USPatent applicationPatented

GNAQ targeted dsRNA compositions and methods for inhibiting expression

Granted 14 Feb 2017 · 2 office actions

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Abstract

The invention relates to a double-stranded ribonucleic acid (dsRNA) targeting a G-alpha q subunit (GNAQ) of a heterotrimeric G gene, and methods of using the dsRNA to inhibit expression of GNAQ.

Description

45 parts
›CROSS REFERENCE TO RELATED APPLICATIONS

This application is a continuation of U.S. patent application Ser. No. 13/614,019, filed Sep. 13, 2012, (allowed), which is a continuation of U.S. patent application Ser. No. 12/635,630, filed Dec. 10, 2009, now U.S. Pat. No. 8,324,368, issued Dec. 4, 2012, which claims the benefit of U.S. Provisional Application No. 61/121,253, filed Dec. 10, 2008, and U.S. Provisional Application No. 61/185,543, filed Jun. 9, 2009, and U.S. Provisional Application No. 61/244,780, filed Sep. 22, 2009, which are hereby incorporated in their entirety by reference.

›REFERENCE TO A SEQUENCE LISTING

This application includes a Sequence Listing submitted electronically as a text file named 27836US_sequencelisting.txt, created on Sep. 23, 2014, with a size of 560,474 bytes. The sequence listing is incorporated by reference.

›FIELD OF THE INVENTION

The invention relates to a double-stranded ribonucleic acid (dsRNA) targeting a G-alpha q subunit (GNAQ) of a heterotrimeric G gene, and methods of using the dsRNA to inhibit expression of GNAQ.

›BACKGROUND OF THE INVENTION

Guanine nucleotide-binding proteins (G proteins) are a family of heterotrimeric proteins that couple cell surface, 7-transmembrane domain receptors to intracellular signaling pathways. G proteins are composed of alpha, beta and gamma subunits. The G-alpha q subunit (GNAQ) is one of the G-alpha subunits. GNAQ mediates stimulation of phospholipase C-beta and hydrolysis of GTP.

Mice with GNAQ mutations leading to overexpression of GNAQ exhibit dermal hyperpigmentation. A point mutation in human GNAQ was reported in a melanoma sample (Bamford et al (2004) Br J Cancer, 91:355-358). In WO/2008/098208 (PCT/US2008/053484), the Applicant's described the presence of mutations that constitutively activate GNAQ in melanocytic neoplasms, e.g., uveal melanomas.

Double-stranded RNA molecules (dsRNA) have been shown to block gene expression in a highly conserved regulatory mechanism known as RNA interference (RNAi). WO 99/32619 (Fire et al.) disclosed the use of a dsRNA of at least 25 nucleotides in length to inhibit the expression of genes in C. elegans . dsRNA has also been shown to degrade target RNA in other organisms, including plants (see, e.g., WO 99/53050, Waterhouse et al.; and WO 99/61631, Heifetz et al.), Drosophila (see, e.g., Yang, D., et al., Curr. Biol . (2000) 10:1191-1200), and mammals (see WO 00/44895, Limmer; and DE 101 00 586.5, Kreutzer et al.).

›SUMMARY OF THE INVENTION · 1 of 2

Disclosed herein are dsRNAs targeted to GNAQ for inhibiting expression of GNAQ in a cell. Also disclosed are methods of using the GNAQ dsRNA for siRNA inhibition of GNAQ expression and treatment of disease associated with expression and/or over expression of GNAQ, e.g., uveal melanoma.

Accordingly one aspect of the invention is a double-stranded ribonucleic acid (dsRNA) for inhibiting expression of a G-alpha q subunit (GNAQ) of a heterotrimeric G gene, having a sense strand and an antisense strand having a region of complementarity complementary to an mRNA encoding GNAQ, wherein each strand is at least 15 nucleotides in length. In one embodiment the dsRNA is AD-20057, e.g., sense strand is SEQ ID NO:1579 and the antisense strand is SEQ ID NO:1580. In another embodiment, the antisense strand is complementary to at least 15 contiguous nucleotides of SEQ ID NO:1421 or is complementary to at least the first 11 nucleotides of SEQ ID NO:1421. The sense strand can include 15 or more contiguous nucleotides of SEQ ID NO:1421 or SEQ ID NO:1579 and/or the antisense strand can include 15 or more contiguous nucleotides of SEQ ID NO:1422 or SEQ ID NO:1580. In some embodiments the sense strand nucleotide sequence includes SEQ ID NO:1421 and the antisense strand nucleotide sequence includes SEQ ID NO:1422.

In some embodiments the dsRNA of the invention results in the following: administration of 0.1 nM of the dsRNA to a A375 cell results in about 66% inhibition of GNAQ mRNA expression as measured by a real time PCR assay or administration of 1 nM of the dsRNA to a A375 cell results in about 61% inhibition of GNAQ mRNA expression as measured by a real time PCR assay or administration of 1 nM of the dsRNA to a A579 cell results in about 82% inhibition of GNAQ mRNA expression as measured by a real time PCR assay or administration of 10 nM of the dsRNA to a OMM1.3 cell results in about 42% inhibition of GNAQ mRNA expression as measured by a real time PCR assay or administration of the dsRNA to a UMEL202 cell results in about 81% inhibition of GNAQ mRNA expression as measured by a real time PCR assay.

In another embodiment, the dsRNA is AD-20051 and the sense strand is SEQ ID NO:1565 and the antisense strand is SEQ ID NO:1566. The dsRNA can be complementary to at least the first 11 nucleotides of SEQ ID NO:1407 and/or complementary to at least 15 contiguous nucleotides of SEQ ID NO:1407. In some embodiments the sense strand includes 15 or more contiguous nucleotides of SEQ ID NO: 1407 or SEQ ID NO:1565 and/or the antisense strand includes 15 or more contiguous nucleotides of SEQ ID NO:1408 or SEQ ID NO:1566. The sense strand nucleotide sequence can include SEQ ID NO:1407 and the antisense strand nucleotide sequence can include SEQ ID NO:1408.

In some embodiments the dsRNA of the invention results in the following: administration of 0.1 nM of the dsRNA to a A375 cell results in about 49% inhibition of GNAQ mRNA expression as measured by a real time PCR assay or administration of 1 nM of the dsRNA to a A375 cell results in about 55% inhibition of GNAQ mRNA expression as measured by a real time PCR assay or administration of 1 nM of the dsRNA to a A579 cell results in about 83% inhibition of GNAQ mRNA expression as measured by a real time PCR assay or administration of 10 nM of the dsRNA to a OMM1.3 cell results in about 42% inhibition of GNAQ mRNA expression as measured by a real time PCR assay.

In other embodiments the dsRNA is AD-20052 or AD-20069.

The antisense strand of the dsRNA is partially or completely complementary to an mRNA encoding a GNAQ, e.g., to a human GNAQ mRNA (e.g., NM_002072) or to a rat GNAQ mRNA (e.g., NM_031036). The region complementary is at least 15 nucleotides in length, e.g., between 19 and 21 nucleotides in length, e.g., 19 nucleotides in length. The region of complementarity can include at least 15 contiguous nucleotides of one of the antisense sequences listed in Tables 2a, 3a, or 4a. In other embodiments, the region of complementarity is one of the antisense sequences listed in Tables 2a, 3a, or 4a.

Additional exemplary dsRNA are provided in the tables herein. In some embodiments, the dsRNA of the invention includes a sense strand and antisense strand are selected from Tables 2b, 3b, 4b or Tables 2c, 3c, or 4c or Tables 2d, 3d, or 4d.

In one aspect, each strand of the dsRNA is no more than 30 nucleotides in length. At least one strand can include a 3′ overhang of at least 1 nucleotide, e.g., 2 nucleotides, e.g., dTdT.

In some embodiments, the dsRNA is modified. For example, the dsRNA can include a modification that causes the dsRNA to have increased stability in a biological sample. In one embodiment, the dsRNA includes at least one modified nucleotide, e.g., a 2′-O-methyl modified nucleotide, a nucleotide comprising a 5′-phosphorothioate group, or a terminal nucleotide linked to a cholesteryl derivative or dodecanoic acid bisdecylamide group. In other embodiments the modified nucleotide is a 2′-deoxy-2′-fluoro modified nucleotide, a 2′-deoxy-modified nucleotide, a locked nucleotide, an abasic nucleotide, 2′-amino-modified nucleotide, 2′-alkyl-modified nucleotide, morpholino nucleotide, a phosphoramidate, or a non-natural base comprising nucleotide. The dsRNA of the invention can include at least one 2′-O-methyl modified nucleotide and at least one 2′-deoxythymidine-3′-phosphate nucleotide comprising a 5′-phosphorothioate group.

Any of the dsRNA of the invention can be modified according to a set of rules, e.g., the sense strand includes all 2′-O-methyl modified pyrimidines and the antisense strand comprises 2′-O-methyl modified pyrimidines when the pyrimidine is adjacent to A and each strand comprises dTdT at the 3′ end or the sense strand comprises all 2′-O-methyl modified pyrimidines and the antisense strand comprises 2′-O-methyl modified pyrimidines when the pyrimidine is adjacent to A and each strand comprises dTsdT at the 3′ end or the sense strand comprises all 2′-O-methyl modified pyrimidines and the antisense strand comprises 2′-O-methyl modified pyrimidines when a) the pyrimidine is adjacent to A or b) the pyrimidine is a uracil adjacent to a U or a G, and each strand comprises dTsdT at the 3′ end.

›SUMMARY OF THE INVENTION · 2 of 2

In some embodiments the dsRNA include a ligand. The ligand can be conjugated to the 3′-end of the sense strand of the dsRNA.

Another aspect of the invention is a composition for inhibiting expression of a GNAQ gene including a dsRNA targeting GNAQ and a pharmaceutical formulation. In one embodiment, the pharmaceutical formulation is a lipid formulation. Exemplary formulations are described herein and include, for example, a LNP formulation, a LNP01 formulation, a XTC-SNALP formulation, a SNALP formulation, or a LNP 11 formulation.

Also included herein is an isolated cell containing a dsRNA of the invention, a vector including the nucleotide sequence that encodes at least one strand of the dsRNA of the invention, and a cell including said vector.

A dsRNA of the invention, upon contact with a cell expressing said GNAQ, inhibits expression of said GNAQ gene by at least 40% compared to a cell not so contacted. In some embodiments, a dsRNA of the invention has a pM IC50, e.g., an IC50 of less than 10 pM.

Another aspect of the invention is method of inhibiting GNAQ expression in a cell, the method including introducing into the cell any of the dsRNA of the invention and maintaining the cell for a time sufficient to obtain degradation of the mRNA transcript of a GNAQ gene, thereby inhibiting expression of the GNAQ gene in the cell. In some embodiments, expression is inhibited by at least 20%, 40%, 60%, or at least 80%. Also included is a method of treating a disorder mediated by GNAQ expression by administering to a human in need of such treatment a therapeutically effective amount of any of the dsRNA of the invention. Examples of said disorders include uveal melanoma, cutaneous melanoma, Blue nevi, Nevi of Ota, a small lung tumor, or a neuroendocrine tumors. The method of treatment can include administering an addition composition, e.g., a second dsRNA.

›DESCRIPTION OF THE DRAWINGS

FIG. 1 is a graph showing IFN-alpha cytokine induction in human PBMCs following transfection with a set of GNAQ targeted dsRNA.

FIG. 2 shows TNF-alpha cytokine induction in human PBMCs following transfection with a set of GNAQ targeted dsRNA.

FIG. 3 shows cell viability of OMM1.3 and MEL285 cells following transfection with 1 nM of dsRNAs. The Y-axis is viability normalized to control AD-1955.

FIG. 4 shows cell viability of MEL202 and MEL285 cells following transfection with 1 nM of dsRNAs. The Y-axis is viability normalized to control AD-1955.

FIG. 5 shows cell viability of OMM1.3 and MEL285 cells following transfection with 0.01 nM of dsRNAs. The Y-axis is viability normalized to control AD-1955.

FIG. 6 shows cell viability of MEL202 and MEL285 cells following transfection with 0.01 nM of dsRNAs. The Y-axis is viability normalized to control AD-1955.

FIG. 7 shows day 7 cell viability of OMM1.3, MEL202, and MEL285 cells following transfection with AD-20057 and AD-20051 dsRNAs

FIG. 8 shows day 7 cell viability of OMM1.3, MEL202, and MEL285 cells following transfection with AD-20069 and AD-20093 dsRNAs.

›DETAILED DESCRIPTION OF THE INVENTION

The invention provides dsRNAs and methods of using the dsRNAs for inhibiting the expression of a G-alpha q subunit (GNAQ) of a heterotrimeric G gene in a cell or a mammal where the dsRNA targets a GNAQ gene. The invention also provides compositions and methods for treating pathological conditions and diseases, such as uveal melanoma in a mammal caused by the over-expression of a GNAQ gene. A dsRNA directs the sequence-specific degradation of mRNA through a process known as RNA interference (RNAi).

The dsRNAs of the compositions featured herein include an antisense strand having a region which is less than 30 nucleotides in length, generally 19-24 nucleotides in length, and is complementary to at least part of an mRNA transcript of a GNAQ gene. The use of these dsRNAs enables the targeted degradation of mRNAs of genes that are implicated in pathologies associated with GNAQ expression in mammals. Very low dosages of GNAQ dsRNAs in particular can specifically and efficiently mediate RNAi, resulting in significant inhibition of expression of a GNAQ gene. Using cell-based assays, the present inventors demonstrate that dsRNAs targeting GNAQ can specifically and efficiently mediate RNAi, resulting in significant inhibition of expression of a GNAQ gene. Thus, methods and compositions including these dsRNAs are useful for treating pathological processes that can be mediated by down regulating GNAQ over-expression, such as, e.g., treatment of uveal melanoma.

The following detailed description discloses how to make and use the compositions containing dsRNAs to inhibit the expression of a GNAQ gene, as well as compositions (e.g., pharmaceutical compositions) and methods for treating diseases and disorders caused by the expression of this gene.

Accordingly, in some aspects, pharmaceutical compositions containing a GNAQ dsRNA and a pharmaceutically acceptable carrier, methods of using the compositions to inhibit expression of a GNAQ gene, and methods of using the pharmaceutical compositions to treat diseases caused by expression of a GNAQ gene are featured in the invention.

›Definitions · 1 of 19

For convenience, the meaning of certain terms and phrases used in the specification, examples, and appended claims, are provided below. If there is an apparent discrepancy between the usage of a term in other parts of this specification and its definition provided in this section, the definition in this section shall prevail.

“G,” “C,” “A” and “U” each generally stand for a nucleotide that contains guanine, cytosine, adenine, and uracil as a base, respectively. “T” and “dT” are used interchangeably herein and refer to a deoxyribonucleotide wherein the nucleobase is thymine, e.g., deoxyribothymine. However, it will be understood that the term “ribonucleotide” or “nucleotide” or “deoxyribonucleotide” can also refer to a modified nucleotide, as further detailed below, or a surrogate replacement moiety. The skilled person is well aware that guanine, cytosine, adenine, and uracil may be replaced by other moieties without substantially altering the base pairing properties of an oligonucleotide comprising a nucleotide bearing such replacement moiety. For example, without limitation, a nucleotide comprising inosine as its base may base pair with nucleotides containing adenine, cytosine, or uracil. Hence, nucleotides containing uracil, guanine, or adenine may be replaced in the nucleotide sequences of the invention by a nucleotide containing, for example, inosine. Sequences comprising such replacement moieties are embodiments of the invention.

As used herein, “GNAQ” refers to a G-alpha q subunit (GNAQ) of a heterotrimeric G gene. GNAQ is also known as guanine nucleotide binding protein (G protein), q polypeptide and G-ALPHA-q, GAQ. The sequence of a human GNAQ mRNA transcript can be found at NM_002072.2. The sequence of rat GNAQ mRNA can be found at NM_031036.

A used herein “target” or “target gene” refers to a GNAQ gene.

As used herein, “target sequence” refers to a contiguous portion of the nucleotide sequence of an mRNA molecule formed during the transcription of a GNAQ gene, including mRNA that is a product of RNA processing of a primary transcription product.

As used herein, the term “strand comprising a sequence” refers to an oligonucleotide comprising a chain of nucleotides that is described by the sequence referred to using the standard nucleotide nomenclature.

As used herein, and unless otherwise indicated, the term “complementary,” when used to describe a first nucleotide sequence in relation to a second nucleotide sequence, refers to the ability of an oligonucleotide or polynucleotide comprising the first nucleotide sequence to hybridize and form a duplex structure under certain conditions with an oligonucleotide or polynucleotide comprising the second nucleotide sequence, as will be understood by the skilled person. Such conditions can, for example, be stringent conditions, where stringent conditions may include: 400 mM NaCl, 40 mM PIPES pH 6.4, 1 mM EDTA, 50° C. or 70° C. for 12-16 hours followed by washing. Other conditions, such as physiologically relevant conditions as may be encountered inside an organism, can apply. The skilled person will be able to determine the set of conditions most appropriate for a test of complementarity of two sequences in accordance with the ultimate application of the hybridized nucleotides.

This includes base-pairing of the oligonucleotide or polynucleotide comprising the first nucleotide sequence to the oligonucleotide or polynucleotide comprising the second nucleotide sequence over the entire length of the first and second nucleotide sequence. Such sequences can be referred to as “fully complementary” with respect to each other herein. However, where a first sequence is referred to as “substantially complementary” with respect to a second sequence herein, the two sequences can be fully complementary, or they may form one or more, but generally not more than 4, 3 or 2 mismatched base pairs upon hybridization, while retaining the ability to hybridize under the conditions most relevant to their ultimate application. However, where two oligonucleotides are designed to form, upon hybridization, one or more single stranded overhangs, such overhangs shall not be regarded as mismatches with regard to the determination of complementarity. For example, a dsRNA comprising one oligonucleotide 21 nucleotides in length and another oligonucleotide 23 nucleotides in length, wherein the longer oligonucleotide comprises a sequence of 21 nucleotides that is fully complementary to the shorter oligonucleotide, may yet be referred to as “fully complementary” for the purposes described herein.

“Complementary” sequences, as used herein, may also include, or be formed entirely from, non-Watson-Crick base pairs and/or base pairs formed from non-natural and modified nucleotides, in as far as the above requirements with respect to their ability to hybridize are fulfilled. Such non-Watson-Crick base pairs includes, but not limited to, G:U Wobble or Hoogstein base pairing.

The terms “complementary,” “fully complementary” and “substantially complementary” herein may be used with respect to the base matching between the sense strand and the antisense strand of a dsRNA, or between the antisense strand of a dsRNA and a target sequence, as will be understood from the context of their use.

As used herein, a polynucleotide that is “substantially complementary to at least part of” a messenger RNA (mRNA) refers to a polynucleotide that is substantially complementary to a contiguous portion of the mRNA of interest (e.g., a target gene, e.g., an mRNA encoding GNAQ) including a 5′ UTR, an open reading frame (ORF), or a 3′ UTR. For example, a polynucleotide is complementary to at least a part of a GNAQ mRNA if the sequence is substantially complementary to a non-interrupted portion of an mRNA encoding GNAQ.

The term “double-stranded RNA” or “dsRNA,” as used herein, refers to a complex of ribonucleic acid molecules, having a duplex structure comprising two anti-parallel and substantially complementary, as defined above, nucleic acid strands. In general, the majority of nucleotides of each strand are ribonucleotides, but as described in detail herein, each or both strands can also include at least one non-ribonucleotide, e.g., a deoxyribonucleotide and/or a modified nucleotide. In addition, as used in this specification, “dsRNA” may include chemical modifications to ribonucleotides, including substantial modifications at multiple nucleotides and including all types of modifications disclosed herein or known in the art. Any such modifications, as used in an siRNA type molecule, are encompassed by “dsRNA” for the purposes of this specification and claims

›Definitions · 2 of 19

The two strands forming the duplex structure may be different portions of one larger RNA molecule, or they may be separate RNA molecules. Where the two strands are part of one larger molecule, and therefore are connected by an uninterrupted chain of nucleotides between the 3′-end of one strand and the 5′-end of the respective other strand forming the duplex structure, the connecting RNA chain is referred to as a “hairpin loop.” Where the two strands are connected covalently by means other than an uninterrupted chain of nucleotides between the 3′-end of one strand and the 5′-end of the respective other strand forming the duplex structure, the connecting structure is referred to as a “linker.” The RNA strands may have the same or a different number of nucleotides. The maximum number of base pairs is the number of nucleotides in the shortest strand of the dsRNA minus any overhangs that are present in the duplex. In addition to the duplex structure, a dsRNA may comprise one or more nucleotide overhangs. The term “siRNA” is also used herein to refer to a dsRNA as described above.

As used herein, a “nucleotide overhang” refers to the unpaired nucleotide or nucleotides that protrude from the duplex structure of a dsRNA when a 3′-end of one strand of the dsRNA extends beyond the 5′-end of the other strand, or vice versa. “Blunt” or “blunt end” means that there are no unpaired nucleotides at that end of the dsRNA, i.e., no nucleotide overhang. A “blunt ended” dsRNA is a dsRNA that is double-stranded over its entire length, i.e., no nucleotide overhang at either end of the molecule.

The term “antisense strand” refers to the strand of a dsRNA which includes a region that is substantially complementary to a target sequence. As used herein, the term “region of complementarity” refers to the region on the antisense strand that is substantially complementary to a sequence, for example a target sequence, as defined herein. Where the region of complementarity is not fully complementary to the target sequence, the mismatches are most tolerated in the terminal regions and, if present, are generally in a terminal region or regions, e.g., within 6, 5, 4, 3, or 2 nucleotides of the 5′ and/or 3′ terminus.

The term “sense strand,” as used herein, refers to the strand of a dsRNA that includes a region that is substantially complementary to a region of the antisense strand.

As used herein, the term “SNALP” refers to a stable nucleic acid-lipid particle. A SNALP represents a vesicle of lipids coating a reduced aqueous interior comprising a nucleic acid such as an iRNA agent or a plasmid from which an iRNA agent is transcribed. SNALP are described, e.g., in U.S. Patent Application Publication Nos. 20060240093, 20070135372, and U.S. Ser. No. 61/045,228 filed on Apr. 15, 2008. These applications are hereby incorporated by reference.

“Introducing into a cell,” when referring to a dsRNA, means facilitating uptake or absorption into the cell, as is understood by those skilled in the art. Absorption or uptake of dsRNA can occur through unaided diffusive or active cellular processes, or by auxiliary agents or devices. The meaning of this term is not limited to cells in vitro; a dsRNA may also be “introduced into a cell,” wherein the cell is part of a living organism. In such instance, introduction into the cell will include the delivery to the organism. For example, for in vivo delivery, dsRNA can be injected into a tissue site or administered systemically. In vitro introduction into a cell includes methods known in the art such as electroporation and lipofection.

The terms “silence,” “inhibit the expression of,” “down-regulate the expression of,” “suppress the expression of” and the like, in as far as they refer to a target gene, herein refer to the at least partial suppression of the expression of a GNAQ gene, as manifested by a reduction of the amount of mRNA which may be isolated or detected from a first cell or group of cells in which a GNAQ gene is transcribed and which has or have been treated such that the expression of a GNAQ gene is inhibited, as compared to a second cell or group of cells substantially identical to the first cell or group of cells but which has or have not been so treated (control cells). The degree of inhibition is usually expressed in terms of

Alternatively, the degree of inhibition may be given in terms of a reduction of a parameter that is functionally linked to GNAQ gene transcription, e.g., the amount of protein encoded by a GNAQ gene which is secreted by a cell, or the number of cells displaying a certain phenotype, e.g., apoptosis. In principle, GNAQ gene silencing may be determined in any cell expressing the target, either constitutively or by genomic engineering, and by any appropriate assay. However, when a reference is needed in order to determine whether a given dsRNA inhibits the expression of a GNAQ gene by a certain degree and therefore is encompassed by the instant invention, the assays provided in the Examples below shall serve as such reference.

For example, in certain instances, expression of a GNAQ gene is suppressed by at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, or 50% by administration of the double-stranded oligonucleotide featured in the invention. In some embodiments, a GNAQ gene is suppressed by at least about 60%, 70%, or 80% by administration of the double-stranded oligonucleotide featured in the invention. In some embodiments, a GNAQ gene is suppressed by at least about 85%, 90%, or 95% by administration of the double-stranded oligonucleotide featured in the invention.

As used herein in the context of GNAQ expression, the terms “treat,” “treatment,” and the like, refer to relief from or alleviation of pathological processes mediated by GNAQ expression. In the context of the present invention insofar as it relates to any of the other conditions recited herein below (other than pathological processes mediated by GNAQ expression), the terms “treat,” “treatment,” and the like mean to relieve or alleviate at least one symptom associated with such condition, or to slow or reverse the progression of such condition, such as tumor reduction in uveal melanoma.

›Definitions · 3 of 19

As used herein, the phrases “therapeutically effective amount” and “prophylactically effective amount” refer to an amount that provides a therapeutic benefit in the treatment, prevention, or management of pathological processes mediated by GNAQ expression or an overt symptom of pathological processes mediated by GNAQ expression. The specific amount that is therapeutically effective can be readily determined by an ordinary medical practitioner, and may vary depending on factors known in the art, such as, for example, the type of pathological processes mediated by GNAQ expression, the patient's history and age, the stage of pathological processes mediated by GNAQ expression, and the administration of other anti-pathological processes mediated by GNAQ expression agents.

As used herein, a “pharmaceutical composition” comprises a pharmacologically effective amount of a dsRNA and a pharmaceutically acceptable carrier. As used herein, “pharmacologically effective amount,” “therapeutically effective amount” or simply “effective amount” refers to that amount of an RNA effective to produce the intended pharmacological, therapeutic or preventive result. For example, if a given clinical treatment is considered effective when there is at least a 25% reduction in a measurable parameter associated with a disease or disorder, a therapeutically effective amount of a drug for the treatment of that disease or disorder is the amount necessary to effect at least a 25% reduction in that parameter.

The term “pharmaceutically acceptable carrier” refers to a carrier for administration of a therapeutic agent. Such carriers include, but are not limited to, saline, buffered saline, dextrose, water, glycerol, ethanol, and combinations thereof. The term specifically excludes cell culture medium. For drugs administered orally, pharmaceutically acceptable carriers include, but are not limited to pharmaceutically acceptable excipients such as inert diluents, disintegrating agents, binding agents, lubricating agents, sweetening agents, flavoring agents, coloring agents and preservatives. Suitable inert diluents include sodium and calcium carbonate, sodium and calcium phosphate, and lactose, while corn starch and alginic acid are suitable disintegrating agents. Binding agents may include starch and gelatin, while the lubricating agent, if present, will generally be magnesium stearate, stearic acid or talc. If desired, the tablets may be coated with a material such as glyceryl monostearate or glyceryl distearate, to delay absorption in the gastrointestinal tract.

As used herein, a “transformed cell” is a cell into which a vector has been introduced from which a dsRNA molecule may be expressed.

Double-Stranded Ribonucleic Acid (dsRNA)

As described in more detail herein, the invention provides double-stranded ribonucleic acid (dsRNA) molecules for inhibiting the expression of a GNAQ gene in a cell or mammal, where the dsRNA includes a sense strand having a first sequence and an antisense strand comprising a second sequence complementary to mRNA encoding GNAQ, wherein said first sequence is complementary to said second sequence at a region of complementarity and wherein each strand is 15 to 30 base pairs in length. In some embodiments, the dsRNA of the invention inhibits the expression of said GNAQ gene by at least 40% as assayed by, for example, a PCR or branched DNA (bDNA)-based method, or by a protein-based method, such as by Western blot. Expression of a GNAQ gene can be reduced by at least 30% when measured by an assay as described in the Examples below. For example, expression of a GNAQ gene in cell culture, such as in HepB3 cells, can be assayed by measuring GNAQ mRNA levels, such as by bDNA or TaqMan assay, or by measuring protein levels, such as by ELISA assay.

The dsRNA can be synthesized by standard methods known in the art as further discussed below, e.g., by use of an automated DNA synthesizer, such as are commercially available from, for example, Biosearch, Applied Biosystems, Inc. The dsRNA includes two RNA strands that are sufficiently complementary to hybridize to form a duplex structure.

One strand of the dsRNA (the antisense strand) includes a region of complementarity that is complementary, to a target sequence, derived from the sequence of an mRNA formed during the expression of a target gene, the other strand (the sense strand) includes a region that is complementary to the antisense strand, such that the two strands hybridize and form a duplex structure when combined under suitable conditions. The region of complementarity is generally at least 15 nucleotides in length, or between 19 and 21 nucleotides in length, or 19, 20, or 21 nucleotides in length. In some embodiments the region of complementarity includes at least 15 contiguous nucleotides of one of the antisense sequences listed in Tables 2a, 3a, or 4a. In other embodiments the region of complementarity includes one of the antisense sequences listed in Tables 2a, 3a, or 4a.

Generally, the duplex structure is between 15 and 30, or between 25 and 30, or between 18 and 25, or between 19 and 24, or between 19 and 21, or 19, 20, or 21 base pairs in length. In one embodiment the duplex is 19 base pairs in length. In another embodiment the duplex is 21 base pairs in length. When two different dsRNAs are used in combination, the duplex lengths can be identical or can differ.

Each strand of the dsRNA of invention is generally between 15 and 30, or between 18 and 25, or 18, 19, 20, 21, 22, 23, 24, or 25 nucleotides in length. In other embodiments, each is strand is 25-30 nucleotides in length. Each strand of the duplex can be the same length or of different lengths. When two different siRNAs are used in combination, the lengths of each strand of each siRNA can be identical or can differ.

The dsRNA of the invention can include one or more single-stranded overhang(s) of one or more nucleotides. In one embodiment, at least one end of the dsRNA has a single-stranded nucleotide overhang of 1 to 4, or 1, 2, 3, or 4 nucleotides. In another embodiment, the overhang include dTdT. In another embodiment, the antisense strand of the dsRNA has 1-10 nucleotides overhangs each at the 3′ end and the 5′ end over the sense strand. In further embodiments, the sense strand of the dsRNA has 1-10 nucleotides overhangs each at the 3′ end and the 5′ end over the antisense strand.

›Definitions · 4 of 19

A dsRNAs having at least one nucleotide overhang can have unexpectedly superior inhibitory properties than the blunt-ended counterpart. In some embodiments the presence of only one nucleotide overhang strengthens the interference activity of the dsRNA, without affecting its overall stability. A dsRNA having only one overhang has proven particularly stable and effective in vivo, as well as in a variety of cells, cell culture mediums, blood, and serum. Generally, the single-stranded overhang is located at the 3′-terminal end of the antisense strand or, alternatively, at the 3′-terminal end of the sense strand. The dsRNA can also have a blunt end, generally located at the 5′-end of the antisense strand. Such dsRNAs can have improved stability and inhibitory activity, thus allowing administration at low dosages, i.e., less than 5 mg/kg body weight of the recipient per day. Generally, the antisense strand of the dsRNA has a nucleotide overhang at the 3′-end, and the 5′-end is blunt. In another embodiment, one or more of the nucleotides in the overhang is replaced with a nucleoside thiophosphate.

In one embodiment, a GNAQ gene is a human GNAQ gene, e.g., the sequence identified by GenBank accession number NM_002072.2.

In specific embodiments, the sense strand of the dsRNA is one of the a sense sequences from Tables 2-4, and the antisense strand is one of the antisense sequences of Tables 2-4. Alternative antisense agents that target elsewhere in the target sequence provided in Tables 2-4 can readily be determined using the target sequence and the flanking GNAQ sequence.

The skilled person is well aware that dsRNAs having a duplex structure of between 20 and 23, but specifically 21, base pairs have been hailed as particularly effective in inducing RNA interference (Elbashir et al., EMBO 2001, 20:6877-6888). However, others have found that shorter or longer dsRNAs can be effective as well. In the embodiments described above, by virtue of the nature of the oligonucleotide sequences provided in Tables 2-4, the dsRNAs featured in the invention can include at least one strand of a length described therein. It can be reasonably expected that shorter dsRNAs having one of the sequences of Tables 2-4 minus only a few nucleotides on one or both ends may be similarly effective as compared to the dsRNAs described above. Hence, dsRNAs having a partial sequence of at least 15, 16, 17, 18, 19, 20, 21, or 22, or more contiguous nucleotides from one of the sequences of Tables 2-4, and differing in their ability to inhibit the expression of a GNAQ gene in an assay as described herein below by not more than 5, 10, 15, 20, 25, or 30% inhibition from a dsRNA comprising the full sequence, are contemplated by the invention. Further, dsRNAs that cleave within a desired GNAQ target sequence can readily be made using the corresponding GNAQ antisense sequence and a complementary sense sequence.

In addition, the dsRNAs provided in Tables 2-4 identify a site in a GNAQ that is susceptible to RNAi based cleavage. As such, the present invention further features dsRNAs that target within the sequence targeted by one of the agents of the present invention. As used herein, a second dsRNA is said to target within the sequence of a first dsRNA if the second dsRNA cleaves the message anywhere within the mRNA that is complementary to the antisense strand of the first dsRNA. Such a second dsRNA will generally consist of at least 15 contiguous nucleotides from one of the sequences provided in Tables 2-4 coupled to additional nucleotide sequences taken from the region contiguous to the selected sequence in a GNAQ gene.

Additional dsRNA of the invention include those that cleave a target mRNA at the same location as a dsRNA described in any of the tables. In general, a RISC complex will cleave a target mRNA between the nucleotides complementary to nucleotides 10 and 11 of the antisense strand of a dsRNA, e.g., siRNA, of the invention. Cleavage e sites can be assayed using, e.g., a 5′ RACE assay.

For example, the duplex AD-20057 includes the sense and antisense strands below. Treatment of a cell with this duplex results in cleavage of human GNAQ mRNA at the nucleotides complementary to nucleotides 10 and 11 of the antisense strand, e.g., nucleotides 1211 and 1212. Therefore, also included in the invention are those dsRNA that cleave at that location.

The dsRNA featured in the invention can contain one or more mismatches to the target sequence. In one embodiment, the dsRNA featured in the invention contains no more than 3 mismatches. If the antisense strand of the dsRNA contains mismatches to a target sequence, it is preferable that the area of mismatch not be located in the center of the region of complementarity. If the antisense strand of the dsRNA contains mismatches to the target sequence, it is preferable that the mismatch be restricted to 5 nucleotides from either end, for example 5, 4, 3, 2, or 1 nucleotide from either the 5′ or 3′ end of the region of complementarity. For example, for a 23 nucleotide dsRNA strand which is complementary to a region of a target gene, the dsRNA generally does not contain any mismatch within the central 13 nucleotides. The methods described within the invention can be used to determine whether a dsRNA containing a mismatch to a target sequence is effective in inhibiting the expression of a target gene. Consideration of the efficacy of dsRNAs with mismatches in inhibiting expression of a target gene is important, especially if the particular region of complementarity in a target gene is known to have polymorphic sequence variation within the population.

Modifications

In yet another embodiment, the dsRNA is chemically modified to enhance stability. The nucleic acids featured in the invention may be synthesized and/or modified by methods well established in the art, such as those described in “Current protocols in nucleic acid chemistry,” Beaucage, S. L. et al. (Edrs.), John Wiley & Sons, Inc., New York, N.Y., USA, which is hereby incorporated herein by reference. Specific examples of dsRNA compounds useful in this invention include dsRNAs containing modified backbones or no natural internucleoside linkages. As defined in this specification, dsRNAs having modified backbones include those that retain a phosphorus atom in the backbone and those that do not have a phosphorus atom in the backbone. For the purposes of this specification, and as sometimes referenced in the art, modified dsRNAs that do not have a phosphorus atom in their internucleoside backbone can also be considered to be oligonucleosides.

›Definitions · 5 of 19

Modified dsRNA backbones include, for example, phosphorothioates, chiral phosphorothioates, phosphorodithioates, phosphotriesters, aminoalkylphosphotriesters, methyl and other alkyl phosphonates including 3′-alkylene phosphonates and chiral phosphonates, phosphinates, phosphoramidates including 3′-amino phosphoramidate and aminoalkylphosphoramidates, thionophosphoramidates, thionoalkylphosphonates, thionoalkylphosphotriesters, and boranophosphates having normal 3′-5′ linkages, 2′-5′ linked analogs of these, and those) having inverted polarity wherein the adjacent pairs of nucleoside units are linked 3′-5′ to 5′-3′ or 2′-5′ to 5′-2′. Various salts, mixed salts and free acid forms are also included.

Representative U.S. patents that teach the preparation of the above phosphorus-containing linkages include, but are not limited to, U.S. Pat. Nos. 3,687,808; 4,469,863; 4,476,301; 5,023,243; 5,177,195; 5,188,897; 5,264,423; 5,276,019; 5,278,302; 5,286,717; 5,321,131; 5,399,676; 5,405,939; 5,453,496; 5,455,233; 5,466,677; 5,476,925; 5,519,126; 5,536,821; 5,541,316; 5,550,111; 5,563,253; 5,571,799; 5,587,361; and 5,625,050, each of which is herein incorporated by reference

Modified dsRNA backbones that do not include a phosphorus atom therein have backbones that are formed by short chain alkyl or cycloalkyl internucleoside linkages, mixed heteroatoms and alkyl or cycloalkyl internucleoside linkages, or ore or more short chain heteroatomic or heterocyclic internucleoside linkages. These include those having morpholino linkages (formed in part from the sugar portion of a nucleoside); siloxane backbones; sulfide, sulfoxide and sulfone backbones; formacetyl and thioformacetyl backbones; methylene formacetyl and thioformacetyl backbones; alkene containing backbones; sulfamate backbones; methyleneimino and methylenehydrazino backbones; sulfonate and sulfonamide backbones; amide backbones; and others having mixed N, O, S and CH2 component parts.

Representative U.S. patents that teach the preparation of the above oligonucleosides include, but are not limited to, U.S. Pat. Nos. 5,034,506; 5,166,315; 5,185,444; 5,214,134; 5,216,141; 5,235,033; 5,64,562; 5,264,564; 5,405,938; 5,434,257; 5,466,677; 5,470,967; 5,489,677; 5,541,307; 5,561,225; 5,596,086; 5,602,240; 5,608,046; 5,610,289; 5,618,704; 5,623,070; 5,663,312; 5,633,360; 5,677,437; and, 5,677,439, each of which is herein incorporated by reference.

In other suitable dsRNA mimetics, both the sugar and the internucleoside linkage, i.e., the backbone, of the nucleotide units are replaced with novel groups. The base units are maintained for hybridization with an appropriate nucleic acid target compound. One such oligomeric compound, a dsRNA mimetic that has been shown to have excellent hybridization properties, is referred to as a peptide nucleic acid (PNA). In PNA compounds, the sugar backbone of a dsRNA is replaced with an amide containing backbone, in particular an aminoethylglycine backbone. The nucleobases are retained and are bound directly or indirectly to aza nitrogen atoms of the amide portion of the backbone. Representative U.S. patents that teach the preparation of PNA compounds include, but are not limited to, U.S. Pat. Nos. 5,539,082; 5,714,331; and 5,719,262, each of which is herein incorporated by reference. Further teaching of PNA compounds can be found in Nielsen et al., Science, 1991, 254, 1497-1500.

Other embodiments of the invention are dsRNAs with phosphorothioate backbones and oligonucleosides with heteroatom backbones, and in particular —CH2-NH—CH2-, —CH2-N(CH3)-O—CH2-[known as a methylene (methylimino) or MMI backbone], —CH2-O—N(CH3)-CH2-, —CH2-N(CH3)-N(CH3)-CH2- and —N(CH3)-CH2-CH2-[wherein the native phosphodiester backbone is represented as —O—P—O—CH2-] of the above-referenced U.S. Pat. No. 5,489,677, and the amide backbones of the above-referenced U.S. Pat. No. 5,602,240. Also preferred are dsRNAs having morpholino backbone structures of the above-referenced U.S. Pat. No. 5,034,506.

Modified dsRNAs may also contain one or more substituted sugar moieties. Preferred dsRNAs comprise one of the following at the 2′ position: OH; F; O-, S-, or N-alkyl; O-, S-, or N-alkenyl; O-, S- or N-alkynyl; or O-alkyl-O-alkyl, wherein the alkyl, alkenyl and alkynyl may be substituted or unsubstituted C1 to C10 alkyl or C2 to C10 alkenyl and alkynyl. Particularly preferred are O[(CH2)nO]mCH3, O(CH2)nOCH3, O(CH2)nNH2, O(CH2)nCH3, O(CH2)nONH2, and O(CH2)nON[(CH2)nCH3)]2, where n and m are from 1 to about 10. Other preferred dsRNAs comprise one of the following at the 2′ position: C1 to C10 lower alkyl, substituted lower alkyl, alkaryl, aralkyl, O-alkaryl or O-aralkyl, SH, SCH3, OCN, Cl, Br, CN, CF3, OCF3, SOCH3, SO2CH3, ONO2, NO2, N3, NH2, heterocycloalkyl, heterocycloalkaryl, aminoalkylamino, polyalkylamino, substituted silyl, an RNA cleaving group, a reporter group, an intercalator, a group for improving the pharmacokinetic properties of an dsRNA, or a group for improving the pharmacodynamic properties of an dsRNA, and other substituents having similar properties. A preferred modification includes 2′-methoxyethoxy (2′-O—CH2CH2OCH3, also known as 2′-O-(2-methoxyethyl) or 2′-MOE) (Martin et al., Helv. Chim. Acta, 1995, 78, 486-504) i.e., an alkoxy-alkoxy group. A further preferred modification includes 2′-dimethylaminooxyethoxy, i.e., a O(CH2)2ON(CH3)2 group, also known as 2′-DMAOE, as described in examples herein below, and 2′-dimethylaminoethoxyethoxy (also known in the art as 2′-O-dimethylaminoethoxyethyl or 2′-DMAEOE), i.e., 2′-O—CH2-O—CH2-N(CH2)2, also described in examples herein below.

Other preferred modifications include 2′-methoxy (2′-OCH 3 ), 2′-aminopropoxy (2′-OCH 2 CH 2 CH 2 NH 2 ) and 2′-fluoro (2′-F). Similar modifications may also be made at other positions on the dsRNA, particularly the 3′ position of the sugar on the 3′ terminal nucleotide or in 2′-5′ linked dsRNAs and the 5′ position of 5′ terminal nucleotide. DsRNAs may also have sugar mimetics such as cyclobutyl moieties in place of the pentofuranosyl sugar. Representative U.S. patents that teach the preparation of such modified sugar structures include, but are not limited to, U.S. Pat. Nos. 4,981,957; 5,118,800; 5,319,080; 5,359,044; 5,393,878; 5,446,137; 5,466,786; 5,514,785; 5,519,134; 5,567,811; 5,576,427; 5,591,722; 5,597,909; 5,610,300; 5,627,053; 5,639,873; 5,646,265; 5,658,873; 5,670,633; and 5,700,920, certain of which are commonly owned with the instant application, and each of which is herein incorporated by reference in its entirety.

›Definitions · 6 of 19

A dsRNA may also include nucleobase (often referred to in the art simply as “base”) modifications or substitutions. As used herein, “unmodified” or “natural” nucleobases include the purine bases adenine (A) and guanine (G), and the pyrimidine bases thymine (T), cytosine (C) and uracil (U). Modified nucleobases include other synthetic and natural nucleobases such as 5-methylcytosine (5-me-C), 5-hydroxymethyl cytosine, xanthine, hypoxanthine, 2-aminoadenine, 6-methyl and other alkyl derivatives of adenine and guanine, 2-propyl and other alkyl derivatives of adenine and guanine, 2-thiouracil, 2-thiothymine and 2-thiocytosine, 5-halouracil and cytosine, 5-propynyl uracil and cytosine, 6-azo uracil, cytosine and thymine, 5-uracil (pseudouracil), 4-thiouracil, 8-halo, 8-amino, 8-thiol, 8-thioalkyl, 8-hydroxyl anal other 8-substituted adenines and guanines, 5-halo, particularly 5-bromo, 5-trifluoromethyl and other 5-substituted uracils and cytosines, 7-methylguanine and 7-methyladenine, 8-azaguanine and 8-azaadenine, 7-deazaguanine and 7-daazaadenine and 3-deazaguanine and 3-deazaadenine. Further nucleobases include those disclosed in U.S. Pat. No. 3,687,808, those disclosed in The Concise Encyclopedia Of Polymer Science And Engineering, pages 858-859, Kroschwitz, J. L, ed. John Wiley & Sons, 1990, these disclosed by Englisch et al., Angewandte Chemie, International Edition, 1991, 30, 613, and those disclosed by Sanghvi, Y S., Chapter 15, DsRNA Research and Applications, pages 289-302, Crooke, S. T. and Lebleu, B., Ed., CRC Press, 1993. Certain of these nucleobases are particularly useful for increasing the binding affinity of the oligomeric compounds featured in the invention. These include 5-substituted pyrimidines, 6-azapyrimidines and N-2, N-6 and 0-6 substituted purines, including 2-aminopropyladenine, 5-propynyluracil and 5-propynylcytosine. 5-methylcytosine substitutions have been shown to increase nucleic acid duplex stability by 0.6-1.2° C. (Sanghvi, Y. S., Crooke, S. T. and Lebleu, B., Eds., DsRNA Research and Applications, CRC Press, Boca Raton, 1993, pp. 276-278) and are exemplary base substitutions, even more particularly when combined with 2′-O-methoxyethyl sugar modifications.

Representative U.S. patents that teach the preparation of certain of the above noted modified nucleobases as well as other modified nucleobases include, but are not limited to, the above noted U.S. Pat. No. 3,687,808, as well as U.S. Pat. Nos. 4,845,205; 5,130,30; 5,134,066; 5,175,273; 5,367,066; 5,432,272; 5,457,187; 5,459,255; 5,484,908; 5,502,177; 5,525,711; 5,552,540; 5,587,469; 5,594,121, 5,596,091; 5,614,617; and 5,681,941, each of which is herein incorporated by reference, and U.S. Pat. No. 5,750,692, also herein incorporated by reference.

Conjugates

Another modification of the dsRNAs featured in the invention involves chemically linking to the dsRNA one or more moieties or conjugates which enhance the activity, cellular distribution or cellular uptake of the dsRNA. Such moieties include but are not limited to lipid moieties such as a cholesterol moiety (Letsinger et al., Proc. Natl. Acid. Sci. USA, 1989, 86: 6553-6556), cholic acid (Manoharan et al., Biorg. Med. Chem. Let., 1994, 4:1053-1060), a thioether, e.g., beryl-S-tritylthiol (Manoharan et al., Ann. N.Y. Acad. Sci., 1992, 660:306-309; Manoharan et al., Biorg. Med. Chem. Let., 1993, 3:2765-2770), a thiocholesterol (Oberhauser et al., Nucl. Acids Res., 1992, 20:533-538), an aliphatic chain, e.g., dodecandiol or undecyl residues (Saison-Behmoaras et al., EMBO J, 1991, 10:1111-1118; Kabanov et al., FEBS Lett., 1990, 259:327-330; Svinarchuk et al., Biochimie, 1993, 75:49-54), a phospholipid, e.g., di-hexadecyl-rac-glycerol or triethyl-ammonium 1,2-di-O-hexadecyl-rac-glycero-3-Hphosphonate (Manoharan et al., Tetrahedron Lett., 1995, 36:3651-3654; Shea et al., Nucl. Acids Res., 1990, 18:3777-3783), a polyamine or a polyethylene glycol chain (Manoharan et al., Nucleosides & Nucleotides, 1995, 14:969-973), or adamantane acetic acid (Manoharan et al., Tetrahedron Lett., 1995, 36:3651-3654), a palmityl moiety (Mishra et al., Biochim. Biophys. Acta, 1995, 1264:229-237), or an octadecylamine or hexylamino-carbonyloxycholesterol moiety (Crooke et al., J. Pharmacol. Exp. Ther., 1996, 277:923-937).

Representative U.S. patents that teach the preparation of such dsRNA conjugates include, but are not limited to, U.S. Pat. Nos. 4,828,979; 4,948,882; 5,218,105; 5,525,465; 5,541,313; 5,545,730; 5,552,538; 5,578,717, 5,580,731; 5,591,584; 5,109,124; 5,118,802; 5,138,045; 5,414,077; 5,486,603; 5,512,439; 5,578,718; 5,608,046; 4,587,044; 4,605,735; 4,667,025; 4,762,779; 4,789,737; 4,824,941; 4,835,263; 4,876,335; 4,904,582; 4,958,013; 5,082,830; 5,112,963; 5,214,136; 5,082,830; 5,112,963; 5,214,136; 5,245,022; 5,254,469; 5,258,506; 5,262,536; 5,272,250; 5,292,873; 5,317,098; 5,371,241, 5,391,723; 5,416,203, 5,451,463; 5,510,475; 5,512,667; 5,514,785; 5,565,552; 5,567,810; 5,574,142; 5,585,481; 5,587,371; 5,595,726; 5,597,696; 5,599,923; 5,599,928 and 5,688,941, each of which is herein incorporated by reference.

It is not necessary for all positions in a given compound to be uniformly modified, and in fact more than one of the aforementioned modifications may be incorporated in a single compound or even at a single nucleoside within a dsRNA. The present invention also includes dsRNA compounds which are chimeric compounds. “Chimeric” dsRNA compounds or “chimeras,” in the context of this invention, are dsRNA compounds, particularly dsRNAs, which contain two or more chemically distinct regions, each made up of at least one monomer unit, i.e., a nucleotide in the case of a dsRNA compound. These dsRNAs typically contain at least one region wherein the dsRNA is modified so as to confer upon the dsRNA increased resistance to nuclease degradation, increased cellular uptake, and/or increased binding affinity for the target nucleic acid. An additional region of the dsRNA may serve as a substrate for enzymes capable of cleaving RNA:DNA or RNA:RNA hybrids. By way of example, RNase H is a cellular endonuclease which cleaves the RNA strand of an RNA:DNA duplex. Activation of RNase H, therefore, results in cleavage of the RNA target, thereby greatly enhancing the efficiency of dsRNA inhibition of gene expression. Consequently, comparable results can often be obtained with shorter dsRNAs when chimeric dsRNAs are used, compared to phosphorothioate deoxydsRNAs hybridizing to the same target region. Cleavage of the RNA target can be routinely detected by gel electrophoresis and, if necessary, associated nucleic acid hybridization techniques known in the art.

›Definitions · 7 of 19

In certain instances, the dsRNA may be modified by a non-ligand group. A number of non-ligand molecules have been conjugated to dsRNAs in order to enhance the activity, cellular distribution or cellular uptake of the dsRNA, and procedures for performing such conjugations are available in the scientific literature. Such non-ligand moieties have included lipid moieties, such as cholesterol (Letsinger et al., Proc. Natl. Acad. Sci. USA, 1989, 86:6553), cholic acid (Manoharan et al., Bioorg. Med. Chem. Lett., 1994, 4:1053), a thioether, e.g., hexyl-S-tritylthiol (Manoharan et al., Ann. N.Y. Acad. Sci., 1992, 660:306; Manoharan et al., Bioorg. Med. Chem. Let., 1993, 3:2765), a thiocholesterol (Oberhauser et al., Nucl. Acids Res., 1992, 20:533), an aliphatic chain, e.g., dodecandiol or undecyl residues (Saison-Behmoaras et al., EMBO J., 1991, 10:111; Kabanov et al., FEBS Left., 1990, 259:327; Svinarchuk et al., Biochimie, 1993, 75:49), a phospholipid, e.g., di-hexadecyl-rac-glycerol or triethylammonium 1,2-di-O-hexadecyl-rac-glycero-3-H-phosphonate (Manoharan et al., Tetrahedron Lett., 1995, 36:3651; Shea et al., Nucl. Acids Res., 1990, 18:3777), a polyamine or a polyethylene glycol chain (Manoharan et al., Nucleosides & Nucleotides, 1995, 14:969), or adamantane acetic acid (Manoharan et al., Tetrahedron Lett., 1995, 36:3651), a palmityl moiety (Mishra et al., Biochim. Biophys. Acta, 1995, 1264:229), or an octadecylamine or hexylamino-carbonyl-oxycholesterol moiety (Crooke et al., J. Pharmacol. Exp. Ther., 1996, 277:923). Representative United States patents that teach the preparation of such dsRNA conjugates have been listed above. Typical conjugation protocols involve the synthesis of dsRNAs bearing an aminolinker at one or more positions of the sequence. The amino group is then reacted with the molecule being conjugated using appropriate coupling or activating reagents. The conjugation reaction may be performed either with the dsRNA still bound to the solid support or following cleavage of the dsRNA in solution phase. Purification of the dsRNA conjugate by HPLC typically affords the pure conjugate.

Vector Encoded dsRNAs

In another aspect, dsRNA molecules of the invention are expressed from transcription units inserted into DNA or RNA vectors (see, e.g., Couture, A, et al., TIG . (1996), 12:5-10; Skillern, A., et al., International PCT Publication No. WO 00/22113, Conrad, International PCT Publication No. WO 00/22114, and Conrad, U.S. Pat. No. 6,054,299). These transgenes can be introduced as a linear construct, a circular plasmid, or a viral vector, which can be incorporated and inherited as a transgene integrated into the host genome. The transgene can also be constructed to permit it to be inherited as an extrachromosomal plasmid (Gassmann, et al., Proc. Natl. Acad. Sci. USA (1995) 92:1292).

The individual strands of a dsRNA can be transcribed by promoters on two separate expression vectors and co-transfected into a target cell. Alternatively each individual strand of the dsRNA can be transcribed by promoters both of which are located on the same expression plasmid. In one embodiment, a dsRNA is expressed as an inverted repeat joined by a linker polynucleotide sequence such that the dsRNA has a stem and loop structure.

The recombinant dsRNA expression vectors are generally DNA plasmids or viral vectors. dsRNA expressing viral vectors can be constructed based on, but not limited to, adeno-associated virus (for a review, see Muzyczka, et al., Curr. Topics Micro. Immunol . (1992) 158:97-129)); adenovirus (see, for example, Berkner, et al., BioTechniques (1998) 6:616), Rosenfeld et al. (1991, Science 252:431-434), and Rosenfeld et al. (1992), Cell 68:143-155)); or alphavirus as well as others known in the art. Retroviruses have been used to introduce a variety of genes into many different cell types, including epithelial cells, in vitro and/or in vivo (see, e.g., Eglitis, et al., Science (1985) 230:1395-1398; Danos and Mulligan, Proc. Natl. Acad. Sci. USA (1998) 85:6460-6464; Wilson et al., 1988, Proc. Natl. Acad. Sci. USA 85:3014-3018; Armentano et al., 1990, Proc. Natl. Acad. Sci. USA 87:61416145; Huber et al., 1991, Proc. Natl. Acad. Sci. USA 88:8039-8043; Ferry et al., 1991 , Proc. Natl. Acad. Sci. USA 88:8377-8381; Chowdhury et al., 1991, Science 254:1802-1805; van Beusechem. et al., 1992, Proc. Nad. Acad. Sci. USA 89:7640-19; Kay et al., 1992, Human Gene Therapy 3:641-647; Dai et al., 1992, Proc. Natl. Acad. Sci. USA 89:10892-10895; Hwu et al., 1993, J. Immunol. 150:4104-4115; U.S. Pat. No. 4,868,116; U.S. Pat. No. 4,980,286; PCT Application WO 89/07136; PCT Application WO 89/02468; PCT Application WO 89/05345; and PCT Application WO 92/07573). Recombinant retroviral vectors capable of transducing and expressing genes inserted into the genome of a cell can be produced by transfecting the recombinant retroviral genome into suitable packaging cell lines such as PA317 and Psi-CRIP (Comette et al., 1991, Human Gene Therapy 2:5-10; Cone et al., 1984, Proc. Natl. Acad. Sci. USA 81:6349). Recombinant adenoviral vectors can be used to infect a wide variety of cells and tissues in susceptible hosts (e.g., rat, hamster, dog, and chimpanzee) (Hsu et al., 1992, J. Infectious Disease, 166:769), and also have the advantage of not requiring mitotically active cells for infection.

Any viral vector capable of accepting the coding sequences for the dsRNA molecule(s) to be expressed can be used, for example vectors derived from adenovirus (AV); adeno-associated virus (AAV); retroviruses (e.g., lentiviruses (LV), Rhabdoviruses, murine leukemia virus); herpes virus, and the like. The tropism of viral vectors can be modified by pseudotyping the vectors with envelope proteins or other surface antigens from other viruses, or by substituting different viral capsid proteins, as appropriate.

For example, lentiviral vectors featured in the invention can be pseudotyped with surface proteins from vesicular stomatitis virus (VSV), rabies, Ebola, Mokola, and the like. AAV vectors featured in the invention can be made to target different cells by engineering the vectors to express different capsid protein serotypes. For example, an AAV vector expressing a serotype 2 capsid on a serotype 2 genome is called AAV 2/2. This serotype 2 capsid gene in the AAV 2/2 vector can be replaced by a serotype 5 capsid gene to produce an AAV 2/5 vector. Techniques for constructing AAV vectors which express different capsid protein serotypes are within the skill in the art; see, e.g., Rabinowitz J E et al. (2002), J Virol 76:791-801, the entire disclosure of which is herein incorporated by reference.

›Definitions · 8 of 19

Selection of recombinant viral vectors suitable for use in the invention, methods for inserting nucleic acid sequences for expressing the dsRNA into the vector, and methods of delivering the viral vector to the cells of interest are within the skill in the art. See, for example, Dornburg R (1995), Gene Therap. 2: 301-310; Eglitis M A (1988), Biotechniques 6: 608-614; Miller A D (1990), Hum Gene Therap. 1: 5-14; Anderson W F (1998), Nature 392: 25-30; and Rubinson D A et al., Nat. Genet. 33: 401-406, the entire disclosures of which are herein incorporated by reference.

Viral vectors can be derived from AV and AAV. In one embodiment, the dsRNA featured in the invention is expressed as two separate, complementary single-stranded RNA molecules from a recombinant AAV vector having, for example, either the U6 or H1 RNA promoters, or the cytomegalovirus (CMV) promoter.

A suitable AV vector for expressing the dsRNA featured in the invention, a method for constructing the recombinant AV vector, and a method for delivering the vector into target cells, are described in Xia H et al. (2002), Nat. Biotech. 20: 1006-1010.

Suitable AAV vectors for expressing the dsRNA featured in the invention, methods for constructing the recombinant AV vector, and methods for delivering the vectors into target cells are described in Samulski R et al. (1987), J. Virol. 61: 3096-3101; Fisher K J et al. (1996), J. Virol, 70: 520-532; Samulski R et al. (1989), J. Virol. 63: 3822-3826; U.S. Pat. Nos. 5,252,479; 5,139,941; International Patent Application No. WO 94/13788; and International Patent Application No. WO 93/24641, the entire disclosures of which are herein incorporated by reference.

The promoter driving dsRNA expression in either a DNA plasmid or viral vector featured in the invention may be a eukaryotic RNA polymerase I (e.g., ribosomal RNA promoter), RNA polymerase II (e.g., CMV early promoter or actin promoter or U1 snRNA promoter) or generally RNA polymerase III promoter (e.g., U6 snRNA or 7SK RNA promoter) or a prokaryotic promoter, for example the T7 promoter, provided the expression plasmid also encodes T7 RNA polymerase required for transcription from a T7 promoter. The promoter can also direct transgene expression to the pancreas (see, e.g., the insulin regulatory sequence for pancreas (Bucchini et al., 1986, Proc. Natl. Acad. Sci. USA 83:2511-2515)).

In addition, expression of the transgene can be precisely regulated, for example, by using an inducible regulatory sequence and expression systems such as a regulatory sequence that is sensitive to certain physiological regulators, e.g., circulating glucose levels, or hormones (Docherty et al., 1994, FASEB J. 8:20-24). Such inducible expression systems, suitable for the control of transgene expression in cells or in mammals include regulation by ecdysone, by estrogen, progesterone, tetracycline, chemical inducers of dimerization, and isopropyl-beta-D1-thiogalactopyranoside (EPTG). A person skilled in the art would be able to choose the appropriate regulatory/promoter sequence based on the intended use of the dsRNA transgene.

Generally, recombinant vectors capable of expressing dsRNA molecules are delivered as described below, and persist in target cells. Alternatively, viral vectors can be used that provide for transient expression of dsRNA molecules. Such vectors can be repeatedly administered as necessary. Once expressed, the dsRNAs bind to target RNA and modulate its function or expression. Delivery of dsRNA expressing vectors can be systemic, such as by intravenous or intramuscular administration, by administration to target cells ex-planted from the patient followed by reintroduction into the patient, or by any other means that allows for introduction into a desired target cell.

dsRNA expression DNA plasmids are typically transfected into target cells as a complex with cationic lipid carriers (e.g., Oligofectamine) or non-cationic lipid-based carriers (e.g., Transit-TKO™). Multiple lipid transfections for dsRNA-mediated knockdowns targeting different regions of a single target gene or multiple target genes over a period of a week or more are also contemplated by the invention. Successful introduction of vectors into host cells can be monitored using various known methods. For example, transient transfection can be signaled with a reporter, such as a fluorescent marker, such as Green Fluorescent Protein (GFP). Stable transfection of cells ex vivo can be ensured using markers that provide the transfected cell with resistance to specific environmental factors (e.g., antibiotics and drugs), such as hygromycin B resistance.

Target gene specific dsRNA molecules can also be inserted into vectors and used as gene therapy vectors for human patients. Gene therapy vectors can be delivered to a subject by, for example, intravenous injection, local administration (see U.S. Pat. No. 5,328,470) or by stereotactic injection (see e.g., Chen et al. (1994) Proc. Natl. Acad. Sci. USA 91:3054-3057). The pharmaceutical preparation of the gene therapy vector can include the gene therapy vector in an acceptable diluent, or can include a slow release matrix in which the gene delivery vehicle is imbedded. Alternatively, where the complete gene delivery vector can be produced intact from recombinant cells, e.g., retroviral vectors, the pharmaceutical preparation can include one or more cells which produce the gene delivery system.

Pharmaceutical Compositions Containing dsRNA

In one embodiment, the invention provides pharmaceutical compositions containing a dsRNA, as described herein, and a pharmaceutically acceptable carrier. The pharmaceutical composition containing the dsRNA is useful for treating a disease or disorder associated with the expression or activity of a GNAQ gene, such as pathological processes mediated by GNAQ expression. Such pharmaceutical compositions are formulated based on the mode of delivery. One example is compositions that are formulated for systemic administration via parenteral delivery, e.g., by intravenous (IV) delivery. Another example is compositions that are formulated for direct delivery into the brain parenchyma, e.g., by infusion into the brain, such as by continuous pump infusion.

›Definitions · 9 of 19

The pharmaceutical compositions featured herein are administered in dosages sufficient to inhibit expression of GNAQ genes. In general, a suitable dose of dsRNA will be in the range of 0.01 to 200.0 milligrams siRNA per kilogram body weight of the recipient per day, generally in the range of 1 to 50 mg per kilogram body weight per day. For example, the dsRNA can be administered at 0.0059 mg/kg, 0.01 mg/kg, 0.0295 mg/kg, 0.05 mg/kg, 0.0590 mg/kg, 0.163 mg/kg, 0.2 mg/kg, 0.3 mg/kg, 0.4 mg/kg, 0.5 mg/kg, 0.543 mg/kg, 0.5900 mg/kg, 0.6 mg/kg, 0.7 mg/kg, 0.8 mg/kg, 0.9 mg/kg, 1 mg/kg, 1.1 mg/kg, 1.2 mg/kg, 1.3 mg/kg, 1.4 mg/kg, 1.5 mg/kg, 1.628 mg/kg, 2 mg/kg, 3 mg/kg, 5.0 mg/kg, 10 mg/kg, 20 mg/kg, 30 mg/kg, 40 mg/kg, or 50 mg/kg per single dose.

In one embodiment, the dosage is between 0.01 and 0.2 mg/kg. For example, the dsRNA can be administered at a dose of 0.01 mg/kg, 0.02 mg/kg, 0.03 mg/kg, 0.04 mg/kg, 0.05 mg/kg, 0.06 mg/kg, 0.07 mg/kg 0.08 mg/kg 0.09 mg/kg, 0.10 mg/kg, 0.11 mg/kg, 0.12 mg/kg, 0.13 mg/kg, 0.14 mg/kg, 0.15 mg/kg, 0.16 mg/kg, 0.17 mg/kg, 0.18 mg/kg, 0.19 mg/kg, or 0.20 mg/kg.

In one embodiment, the dosage is between 0.005 mg/kg and 1.628 mg/kg. For example, the dsRNA can be administered at a dose of 0.0059 mg/kg, 0.0295 mg/kg, 0.0590 mg/kg, 0.163 mg/kg, 0.543 mg/kg, 0.5900 mg/kg, or 1.628 mg/kg.

In one embodiment, the dosage is between 0.2 mg/kg and 1.5 mg/kg. For example, the dsRNA can be administered at a dose of 0.2 mg/kg, 0.3 mg/kg, 0.4 mg/kg, 0.5 mg/kg, 0.6 mg/kg, 0.7 mg/kg, 0.8 mg/kg, 0.9 mg/kg, 1 mg/kg, 1.1 mg/kg, 1.2 mg/kg, 1.3 mg/kg, 1.4 mg/kg, or 1.5 mg/kg.

The dsRNA can be administered at a dose of 0.03 mg/kg.

The pharmaceutical composition may be administered once daily, or the dsRNA may be administered as two, three, or more sub-doses at appropriate intervals throughout the day or even using continuous infusion or delivery through a controlled release formulation. In that case, the dsRNA contained in each sub-dose must be correspondingly smaller in order to achieve the total daily dosage. The dosage unit can also be compounded for delivery over several days, e.g., using a conventional sustained release formulation which provides sustained release of the dsRNA over a several day period. Sustained release formulations are well known in the art and are particularly useful for delivery of agents at a particular site, such as could be used with the agents of the present invention. In this embodiment, the dosage unit contains a corresponding multiple of the daily dose.

The effect of a single dose on GNAQ levels is long lasting, such that subsequent doses are administered at not more than 3, 4, or 5 day intervals, or at not more than 1, 2, 3, or 4 week intervals, or at not more than 5, 6, 7, 8, 9, or 10 week intervals.

The skilled artisan will appreciate that certain factors may influence the dosage and timing required to effectively treat a subject, including but not limited to the severity of the disease or disorder, previous treatments, the general health and/or age of the subject, and other diseases present. Moreover, treatment of a subject with a therapeutically effective amount of a composition can include a single treatment or a series of treatments. Estimates of effective dosages and in vivo half-lives for the individual dsRNAs encompassed by the invention can be made using conventional methodologies or on the basis of in vivo testing using an appropriate animal model, as described elsewhere herein.

Advances in mouse genetics have generated a number of mouse models for the study of various human diseases, such as pathological processes mediated by GNAQ expression. Such models are used for in vivo testing of dsRNA, as well as for determining a therapeutically effective dose. A suitable mouse model is, for example, a mouse containing a plasmid expressing human GNAQ. Another suitable mouse model is a transgenic mouse carrying a transgene that expresses human GNAQ.

The data obtained from cell culture assays and animal studies can be used in formulating a range of dosage for use in humans. The dosage of compositions featured in the invention lies generally within a range of circulating concentrations that include the ED50 with little or no toxicity. The dosage may vary within this range depending upon the dosage form employed and the route of administration utilized. For any compound used in the methods featured in the invention, the therapeutically effective dose can be estimated initially from cell culture assays. A dose may be formulated in animal models to achieve a circulating plasma concentration range of the compound or, when appropriate, of the polypeptide product of a target sequence (e.g., achieving a decreased concentration of the polypeptide) that includes the IC50 (i.e., the concentration of the test compound which achieves a half-maximal inhibition of symptoms) as determined in cell culture. Such information can be used to more accurately determine useful doses in humans. Levels in plasma may be measured, for example, by high performance liquid chromatography.

The dsRNAs featured in the invention can be administered in combination with other known agents effective in treatment of pathological processes mediated by target gene expression. In any event, the administering physician can adjust the amount and timing of dsRNA administration on the basis of results observed using standard measures of efficacy known in the art or described herein.

Administration

The present invention also includes pharmaceutical compositions and formulations which include the dsRNA compounds featured in the invention. The pharmaceutical compositions of the present invention may be administered in a number of ways depending upon whether local or systemic treatment is desired and upon the area to be treated. Administration may be topical, pulmonary, e.g., by inhalation or insufflation of powders or aerosols, including by nebulizer; intratracheal, intranasal, epidermal and transdermal, oral or parenteral. Parenteral administration includes intravenous, intraarterial, subcutaneous, intraperitoneal or intramuscular injection or infusion; or intracranial, e.g., intraparenchymal, intrathecal or intraventricular, administration.

›Definitions · 10 of 19

The dsRNA can be delivered in a manner to target a particular tissue, such as the liver (e.g., the hepatocytes of the liver).

The present invention includes pharmaceutical compositions that can be delivered by injection directly into the brain. The injection can be by stereotactic injection into a particular region of the brain (e.g., the substantia nigra, cortex, hippocampus, striatum, or globus pallidus), or the dsRNA can be delivered into multiple regions of the central nervous system (e.g., into multiple regions of the brain, and/or into the spinal cord). The dsRNA can also be delivered into diffuse regions of the brain (e.g., diffuse delivery to the cortex of the brain).

In one embodiment, a dsRNA targeting GNAQ can be delivered by way of a cannula or other delivery device having one end implanted in a tissue, e.g., the brain, e.g., the substantia nigra, cortex, hippocampus, striatum, corpus callosum or globus pallidus of the brain. The cannula can be connected to a reservoir of the dsRNA composition. The flow or delivery can be mediated by a pump, e.g., an osmotic pump or minipump, such as an Alzet pump (Durect, Cupertino, Calif.). In one embodiment, a pump and reservoir are implanted in an area distant from the tissue, e.g., in the abdomen, and delivery is effected by a conduit leading from the pump or reservoir to the site of release. Infusion of the dsRNA composition into the brain can be over several hours or for several days, e.g., for 1, 2, 3, 5, or 7 days or more. Devices for delivery to the brain are described, for example, in U.S. Pat. Nos. 6,093,180, and 5,814,014.

Pharmaceutical compositions and formulations for topical administration may include transdermal patches, ointments, lotions, creams, gels, drops, suppositories, sprays, liquids and powders. Conventional pharmaceutical carriers, aqueous, powder or oily bases, thickeners and the like may be necessary or desirable. Coated condoms, gloves and the like may also be useful. Suitable topical formulations include those in which the dsRNAs featured in the invention are in admixture with a topical delivery agent such as lipids, liposomes, fatty acids, fatty acid esters, steroids, chelating agents and surfactants. Suitable lipids and liposomes include neutral (e.g., dioleoylphosphatidyl DOPE ethanolamine, dimyristoylphosphatidyl choline DMPC, distearoylphosphatidyl choline) negative (e g., dimyristoylphosphatidyl glycerol DMPG) and cationic (e.g., dioleoyltetramethylaminopropyl DOTAP and dioleoylphosphatidyl ethanolamine DOTMA). DsRNAs featured in the invention may be encapsulated within liposomes or may form complexes thereto, in particular to cationic liposomes. Alternatively, dsRNAs may be complexed to lipids, in particular to cationic lipids. Suitable fatty acids and esters include but are not limited to arachidonic acid, oleic acid, eicosanoic acid, lauric acid, caprylic acid, capric acid, myristic acid, palmitic acid, stearic acid, linoleic acid, linolenic acid, dicaprate, tricaprate, monoolein, dilaurin, glyceryl 1-monocaprate, 1-dodecylazacycloheptan-2-one, an acylcarnitine, an acylcholine, or a C 1-10 alkyl ester (e.g., isopropylmyristate IPM), monoglyceride, diglyceride or pharmaceutically acceptable salt thereof. Topical formulations are described in detail in U.S. Pat. No. 6,747,014, which is incorporated herein by reference.

Liposomal Formulations

There are many organized surfactant structures besides microemulsions that have been studied and used for the formulation of drugs. These include monolayers, micelles, bilayers and vesicles. Vesicles, such as liposomes, have attracted great interest because of their specificity and the duration of action they offer from the standpoint of drug delivery. As used in the present invention, the term “liposome” means a vesicle composed of amphiphilic lipids arranged in a spherical bilayer or bilayers.

Liposomes are unilamellar or multilamellar vesicles which have a membrane formed from a lipophilic material and an aqueous interior. The aqueous portion contains the composition to be delivered. Cationic liposomes possess the advantage of being able to fuse to the cell wall. Non-cationic liposomes, although not able to fuse as efficiently with the cell wall, are taken up by macrophages in vivo.

In order to cross intact mammalian skin, lipid vesicles must pass through a series of fine pores, each with a diameter less than 50 nm, under the influence of a suitable transdermal gradient. Therefore, it is desirable to use a liposome which is highly deformable and able to pass through such fine pores.

Further advantages of liposomes include; liposomes obtained from natural phospholipids are biocompatible and biodegradable; liposomes can incorporate a wide range of water and lipid soluble drugs; liposomes can protect encapsulated drugs in their internal compartments from metabolism and degradation (Rosoff, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 245). Important considerations in the preparation of liposome formulations are the lipid surface charge, vesicle size and the aqueous volume of the liposomes.

Liposomes are useful for the transfer and delivery of active ingredients to the site of action. Because the liposomal membrane is structurally similar to biological membranes, when liposomes are applied to a tissue, the liposomes start to merge with the cellular membranes and as the merging of the liposome and cell progresses, the liposomal contents are emptied into the cell where the active agent may act.

Liposomal formulations have been the focus of extensive investigation as the mode of delivery for many drugs. There is growing evidence that for topical administration, liposomes present several advantages over other formulations. Such advantages include reduced side-effects related to high systemic absorption of the administered drug, increased accumulation of the administered drug at the desired target, and the ability to administer a wide variety of drugs, both hydrophilic and hydrophobic, into the skin.

›Definitions · 11 of 19

Several reports have detailed the ability of liposomes to deliver agents including high-molecular weight DNA into the skin. Compounds including analgesics, antibodies, hormones and high-molecular weight DNAs have been administered to the skin. The majority of applications resulted in the targeting of the upper epidermis

Liposomes fall into two broad classes. Cationic liposomes are positively charged liposomes which interact with the negatively charged DNA molecules to form a stable complex. The positively charged DNA/liposome complex binds to the negatively charged cell surface and is internalized in an endosome. Due to the acidic pH within the endosome, the liposomes are ruptured, releasing their contents into the cell cytoplasm (Wang et al., Biochem. Biophys. Res. Commun., 1987, 147, 980-985).

Liposomes which are pH-sensitive or negatively-charged, entrap DNA rather than complex with it. Since both the DNA and the lipid are similarly charged, repulsion rather than complex formation occurs. Nevertheless, some DNA is entrapped within the aqueous interior of these liposomes. pH-sensitive liposomes have been used to deliver DNA encoding the thymidine kinase gene to cell monolayers in culture. Expression of the exogenous gene was detected in the target cells (Zhou et al., Journal of Controlled Release, 1992, 19, 269-274).

One major type of liposomal composition includes phospholipids other than naturally-derived phosphatidylcholine. Neutral liposome compositions, for example, can be formed from dimyristoyl phosphatidylcholine (DMPC) or dipalmitoyl phosphatidylcholine (DPPC). Anionic liposome compositions generally are formed from dimyristoyl phosphatidylglycerol, while anionic fusogenic liposomes are formed primarily from dioleoyl phosphatidylethanolamine (DOPE). Another type of liposomal composition is formed from phosphatidylcholine (PC) such as, for example, soybean PC, and egg PC. Another type is formed from mixtures of phospholipid and/or phosphatidylcholine and/or cholesterol.

Several studies have assessed the topical delivery of liposomal drug formulations to the skin. Application of liposomes containing interferon to guinea pig skin resulted in a reduction of skin herpes sores while delivery of interferon via other means (e.g., as a solution or as an emulsion) were ineffective (Weiner et al., Journal of Drug Targeting, 1992, 2, 405-410). Further, an additional study tested the efficacy of interferon administered as part of a liposomal formulation to the administration of interferon using an aqueous system, and concluded that the liposomal formulation was superior to aqueous administration (du Plessis et al., Antiviral Research, 1992, 18, 259-265).

Non-ionic liposomal systems have also been examined to determine their utility in the delivery of drugs to the skin, in particular systems comprising non-ionic surfactant and cholesterol. Non-ionic liposomal formulations comprising Novasome™ I (glyceryl dilaurate/cholesterol/polyoxyethylene-10-stearyl ether) and Novasome™ II (glyceryl distearate/cholesterol/polyoxyethylene-10-stearyl ether) were used to deliver cyclosporin-A into the dermis of mouse skin. Results indicated that such non-ionic liposomal systems were effective in facilitating the deposition of cyclosporin-A into different layers of the skin (Hu et al. S.T.P.Pharma. Sci., 1994, 4, 6, 466).

Liposomes also include “sterically stabilized” liposomes, a term which, as used herein, refers to liposomes comprising one or more specialized lipids that, when incorporated into liposomes, result in enhanced circulation lifetimes relative to liposomes lacking such specialized lipids. Examples of sterically stabilized liposomes are those in which part of the vesicle-forming lipid portion of the liposome (A) comprises one or more glycolipids, such as monosialoganglioside G M1 , or (B) is derivatized with one or more hydrophilic polymers, such as a polyethylene glycol (PEG) moiety. While not wishing to be bound by any particular theory, it is thought in the art that, at least for sterically stabilized liposomes containing gangliosides, sphingomyelin, or PEG-derivatized lipids, the enhanced circulation half-life of these sterically stabilized liposomes derives from a reduced uptake into cells of the reticuloendothelial system (RES) (Allen et al., FEBS Letters, 1987, 223, 42; Wu et al., Cancer Research, 1993, 53, 3765).

Various liposomes comprising one or more glycolipids are known in the art. Papahadjopoulos et al. (Ann. N.Y. Acad. Sci., 1987, 507, 64) reported the ability of monosialoganglioside G M1 , galactocerebroside sulfate and phosphatidylinositol to improve blood half-lives of liposomes. These findings were expounded upon by Gabizon et al. (Proc. Natl. Acad. Sci. U.S.A., 1988, 85, 6949). U.S. Pat. No. 4,837,028 and WO 88/04924, both to Allen et al., disclose liposomes comprising (1) sphingomyelin and (2) the ganglioside G M1 or a galactocerebroside sulfate ester. U.S. Pat. No. 5,543,152 (Webb et al.) discloses liposomes comprising sphingomyelin. Liposomes comprising 1,2-sn-dimyristoylphosphatidylcholine are disclosed in WO 97/13499 (Lim et al).

Many liposomes comprising lipids derivatized with one or more hydrophilic polymers, and methods of preparation thereof, are known in the art. Sunamoto et al. (Bull. Chem. Soc. Jpn., 1980, 53, 2778) described liposomes comprising a nonionic detergent, 2C 1215G , that contains a PEG moiety. Illum et al. (FEBS Lett., 1984, 167, 79) noted that hydrophilic coating of polystyrene particles with polymeric glycols results in significantly enhanced blood half-lives. Synthetic phospholipids modified by the attachment of carboxylic groups of polyalkylene glycols (e.g., PEG) are described by Sears (U.S. Pat. Nos. 4,426,330 and 4,534,899). Klibanov et al. (FEBS Lett., 1990, 268, 235) described experiments demonstrating that liposomes comprising phosphatidylethanolamine (PE) derivatized with PEG or PEG stearate have significant increases in blood circulation half-lives. Blume et al. (Biochimica et Biophysica Acta, 1990, 1029, 91) extended such observations to other PEG-derivatized phospholipids, e.g., DSPE-PEG, formed from the combination of distearoylphosphatidylethanolamine (DSPE) and PEG. Liposomes having covalently bound PEG moieties on their external surface are described in European Patent No. EP 0 445 131 B1 and WO 90/04384 to Fisher. Liposome compositions containing 1-20 mole percent of PE derivatized with PEG, and methods of use thereof, are described by Woodle et al. (U.S. Pat. Nos. 5,013,556 and 5,356,633) and Martin et al. (U.S. Pat. No. 5,213,804 and European Patent No. EP 0 496 813 B1). Liposomes comprising a number of other lipid-polymer conjugates are disclosed in WO 91/05545 and U.S. Pat. No. 5,225,212 (both to Martin et al.) and in WO 94/20073 (Zalipsky et al.) Liposomes comprising PEG-modified ceramide lipids are described in WO 96/10391 (Choi et al). U.S. Pat. No. 5,540,935 (Miyazaki et al.) and U.S. Pat. No. 5,556,948 (Tagawa et al.) describe PEG-containing liposomes that can be further derivatized with functional moieties on their surfaces.

›Definitions · 12 of 19

A number of liposomes comprising nucleic acids are known in the art. WO 96/40062 to Thierry et al. discloses methods for encapsulating high molecular weight nucleic acids in liposomes. U.S. Pat. No. 5,264,221 to Tagawa et al. discloses protein-bonded liposomes and asserts that the contents of such liposomes may include a dsRNA. U.S. Pat. No. 5,665,710 to Rahman et al. describes certain methods of encapsulating oligodeoxynucleotides in liposomes. WO 97/04787 to Love et al. discloses liposomes comprising dsRNAs targeted to the raf gene.

Transfersomes are yet another type of liposomes, and are highly deformable lipid aggregates which are candidates for drug delivery vehicles. Transfersomes may be described as lipid droplets which are so highly deformable that they are easily able to penetrate through pores which are smaller than the droplet. Transfersomes are adaptable to the environment in which they are used, e.g., they are self-optimizing (adaptive to the shape of pores in the skin), self-repairing, frequently reach their targets without fragmenting, and often self-loading. To make transfersomes it is possible to add surface edge-activators, usually surfactants, to a standard liposomal composition. Transfersomes have been used to deliver serum albumin to the skin. The transfersome-mediated delivery of serum albumin has been shown to be as effective as subcutaneous injection of a solution containing serum albumin.

Surfactants find wide application in formulations such as emulsions (including microemulsions) and liposomes. The most common way of classifying and ranking the properties of the many different types of surfactants, both natural and synthetic, is by the use of the hydrophile/lipophile balance (HLB). The nature of the hydrophilic group (also known as the “head”) provides the most useful means for categorizing the different surfactants used in formulations (Rieger, in Pharmaceutical Dosage Forms, Marcel Dekker, Inc., New York, N.Y., 1988, p. 285).

If the surfactant molecule is not ionized, it is classified as a nonionic surfactant. Nonionic surfactants find wide application in pharmaceutical and cosmetic products and are usable over a wide range of pH values. In general their HLB values range from 2 to about 18 depending on their structure. Nonionic surfactants include nonionic esters such as ethylene glycol esters, propylene glycol esters, glyceryl esters, polyglyceryl esters, sorbitan esters, sucrose esters, and ethoxylated esters. Nonionic alkanolamides and ethers such as fatty alcohol ethoxylates, propoxylated alcohols, and ethoxylated/propoxylated block polymers are also included in this class. The polyoxyethylene surfactants are the most popular members of the nonionic surfactant class.

If the surfactant molecule carries a negative charge when it is dissolved or dispersed in water, the surfactant is classified as anionic. Anionic surfactants include carboxylates such as soaps, acyl lactylates, acyl amides of amino acids, esters of sulfuric acid such as alkyl sulfates and ethoxylated alkyl sulfates, sulfonates such as alkyl benzene sulfonates, acyl isethionates, acyl taurates and sulfosuccinates, and phosphates. The most important members of the anionic surfactant class are the alkyl sulfates and the soaps.

If the surfactant molecule carries a positive charge when it is dissolved or dispersed in water, the surfactant is classified as cationic. Cationic surfactants include quaternary ammonium salts and ethoxylated amines. The quaternary ammonium salts are the most used members of this class.

If the surfactant molecule has the ability to carry either a positive or negative charge, the surfactant is classified as amphoteric. Amphoteric surfactants include acrylic acid derivatives, substituted alkylamides, N-alkylbetaines and phosphatides.

The use of surfactants in drug products, formulations and in emulsions has been reviewed (Rieger, in Pharmaceutical Dosage Forms, Marcel Dekker, Inc., New York, N.Y., 1988, p. 285).

Nucleic Acid Lipid Particles

In one embodiment, a GNAQ dsRNA featured in the invention is fully encapsulated in the lipid formulation, e.g., to form a SPLP, pSPLP, SNALP, or other nucleic acid-lipid particle. As used herein, the term “SNALP” refers to a stable nucleic acid-lipid particle, including SPLP. As used herein, the term “SPLP” refers to a nucleic acid-lipid particle comprising plasmid DNA encapsulated within a lipid vesicle. SNALPs and SPLPs typically contain a cationic lipid, a non-cationic lipid, and a lipid that prevents aggregation of the particle (e.g., a PEG-lipid conjugate). SNALPs and SPLPs are extremely useful for systemic applications, as they exhibit extended circulation lifetimes following intravenous (i.v.) injection and accumulate at distal sites (e.g., sites physically separated from the administration site). SPLPs include “pSPLP,” which include an encapsulated condensing agent-nucleic acid complex as set forth in PCT Publication No. WO 00/03683. The particles of the present invention typically have a mean diameter of about 50 nm to about 150 nm, more typically about 60 nm to about 130 nm, more typically about 70 nm to about 110 nm, most typically about 70 nm to about 90 nm, and are substantially nontoxic. In addition, the nucleic acids when present in the nucleic acid-lipid particles of the present invention are resistant in aqueous solution to degradation with a nuclease. Nucleic acid-lipid particles and their method of preparation are disclosed in, e.g., U.S. Pat. Nos. 5,976,567; 5,981,501; 6,534,484; 6,586,410; 6,815,432; and PCT Publication No. WO 96/40964.

In one embodiment, the lipid to drug ratio (mass/mass ratio) (e.g., lipid to dsRNA ratio) will be in the range of from about 1:1 to about 50:1, from about 1:1 to about 25:1, from about 3:1 to about 15:1, from about 4:1 to about 10:1, from about 5:1 to about 9:1, or about 6:1 to about 9:1. In some embodiments the lipid to dsRNA ratio can be about 1:1, 2:1, 3:1, 4:1, 5:1, 6:1, 7:1, 8:1, 9:1, 10:1, or 11:1.

›Definitions · 13 of 19

The cationic lipid may be, for example, N,N-dioleyl-N,N-dimethylammonium chloride (DODAC), N,N-distearyl-N,N-dimethylammonium bromide (DDAB), N—(I-(2,3-dioleoyloxy)propyl)-N,N,N-trimethylammonium chloride (DOTAP), N—(I-(2,3-dioleyloxyl)propyl)-N,N,N-trimethylammonium chloride (DOTMA), N,N-dimethyl-2,3-dioleyloxy)propylamine (DODMA), 1,2-DiLinoleyloxy-N,N-dimethylaminopropane (DLinDMA), 1,2-Dilinolenyloxy-N,N-dimethylaminopropane (DLenDMA), 1,2-Dilinoleylcarbamoyloxy-3-dimethylaminopropane (DLin-C-DAP), 1,2-Dilinoleyoxy-3-(dimethylamino)acetoxypropane (DLin-DAC), 1,2-Dilinoleyoxy-3-morpholinopropane (DLin-MA), 1,2-Dilinoleoyl-3-dimethylaminopropane (DLinDAP), 1,2-Dilinoleylthio-3-dimethylaminopropane (DLin-S-DMA), 1-Linoleoyl-2-linoleyloxy-3-dimethylaminopropane (DLin-2-DMAP), 1,2-Dilinoleyloxy-3-trimethylaminopropane chloride salt (DLin-TMA.Cl), 1,2-Dilinoleoyl-3-trimethylaminopropane chloride salt (DLin-TAP.Cl), 1,2-Dilinoleyloxy-3-(N-methylpiperazino)propane (DLin-MPZ), or 3-(N,N-Dilinoleylamino)-1,2-propanediol (DLinAP), 3-(N,N-Dioleylamino)-1,2-propanedio (DOAP), 1,2-Dilinoleyloxo-3-(2-N,N-dimethylamino)ethoxypropane (DLin-EG-DMA), 1,2-Dilinolenyloxy-N,N-dimethylaminopropane (DLinDMA), 2,2-Dilinoleyl-4-dimethylaminomethyl-[1,3]-dioxolane (DLin-K-DMA) or analogs thereof, (3aR,5s,6aS)-N,N-dimethyl-2,2-di((9Z,12Z)-octadeca-9,12-dienyl)tetrahydro-3aH-cyclopenta[d][1,3]dioxol-5-amine (ALN100), (6Z,9Z,28Z,31Z)-heptatriaconta-6,9,28,31-tetraen-19-yl 4-(dimethylamino)butanoate (MC3), 1,1′-(2-(4-(2-((2-(bis(2-hydroxydodecyl)amino)ethyl)(2-hydroxydodecyl)amino)ethyl)piperazin-1-yl)ethylazanediyl)didodecan-2-ol (Tech G1), or a mixture thereof. The cationic lipid may comprise from about 20 mol % to about 50 mol % or about 40 mol % of the total lipid present in the particle.

The non-cationic lipid may be an anionic lipid or a neutral lipid including, but not limited to, distearoylphosphatidylcholine (DSPC), dioleoylphosphatidylcholine (DOPC), dipalmitoylphosphatidylcholine (DPPC), dioleoylphosphatidylglycerol (DOPG), dipalmitoylphosphatidylglycerol (DPPG), dioleoyl-phosphatidylethanolamine (DOPE), palmitoyloleoylphosphatidylcholine (POPC), palmitoyloleoylphosphatidylethanolamine (POPE), dioleoyl-phosphatidylethanolamine 4-(N-maleimidomethyl)-cyclohexane-1-carboxylate (DOPE-mal), dipalmitoyl phosphatidyl ethanolamine (DPPE), dimyristoylphosphoethanolamine (DMPE), distearoyl-phosphatidyl-ethanolamine (DSPE), 16-O-monomethyl PE, 16-O-dimethyl PE, 18-1-trans PE, 1-stearoyl-2-oleoyl-phosphatidyethanolamine (SOPE), cholesterol, or a mixture thereof. The non-cationic lipid may be from about 5 mol % to about 90 mol %, about 10 mol %, or about 58 mol % if cholesterol is included, of the total lipid present in the particle.

The conjugated lipid that inhibits aggregation of particles may be, for example, a polyethyleneglycol (PEG)-lipid including, without limitation, a PEG-diacylglycerol (DAG), a PEG-dialkyloxypropyl (DAA), a PEG-phospholipid, a PEG-ceramide (Cer), or a mixture thereof. The PEG-DAA conjugate may be, for example, a PEG-dilauryloxypropyl (Ci 2 ), a PEG-dimyristyloxypropyl (Ci 4 ), a PEG-dipalmityloxypropyl (C1 6 ), or a PEG-distearyloxypropyl (C18). Other examples of PEG conjugates include PEG-cDMA (N-[(methoxy poly(ethylene glycol)2000)carbamyl]-1,2-dimyristyloxlpropyl-3-amine), mPEG2000-DMG (mPEG-dimyrystylglycerol (with an average molecular weight of 2,000) and PEG-C-DOMG (R-3-[(w-methoxy-poly(ethylene glycol)2000)carbamoyl)]-1,2-dimyristyloxlpropyl-3-amine) The conjugated lipid that prevents aggregation of particles may be from 0 mol % to about 20 mol % or about 1.0, 1.1., 1.2, 0.13, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, or 2 mol % of the total lipid present in the particle.

In some embodiments, the nucleic acid-lipid particle further includes cholesterol at, e.g., about 10 mol % to about 60 mol % or about 48 mol % of the total lipid present in the particle.

In one embodiment, the compound 2,2-Dilinoleyl-4-dimethylaminoethyl-[1,3]-dioxolane can be used to prepare lipid-siRNA nanoparticles. Synthesis of 2,2-Dilinoleyl-4-dimethylaminoethyl-[1,3]-dioxolane is described in U.S. provisional patent application No. 61/107,998 filed on Oct. 23, 2008, which is herein incorporated by reference.

For example, the lipid-siRNA particle can include 40% 2,2-Dilinoleyl-4-dimethylaminoethyl-[1,3]-dioxolane: 10% DSPC: 40% Cholesterol: 10% PEG-C-DOMG (mole percent) with a particle size of 63.0±20 nm and a 0.027 siRNA/Lipid Ratio.

In still another embodiment, the compound 1,1′-(2-(4-(2-((2-(bis(2-hydroxydodecyl)amino)ethyl)(2-hydroxydodecyl)amino)ethyl)piperazin-1-yl)ethylazanediyl)didodecan-2-ol (Tech G1) can be used to prepare lipid-siRNA particles. For example, the dsRNA can be formulated in a lipid formulation comprising Tech-G1, distearoyl phosphatidylcholine (DSPC), cholesterol and mPEG2000-DMG at a molar ratio of 50:10:38.5:1.5 at a total lipid to siRNA ratio of 7:1 (wt:wt).

LNP01

In one embodiment, the lipidoid ND98.4HCl (MW 1487) (Formula 1), Cholesterol (Sigma-Aldrich), and PEG-Ceramide C16 (Avanti Polar Lipids) can be used to prepare lipid-siRNA nanoparticles (i.e., LNP01 particles). Stock solutions of each in ethanol can be prepared as follows: ND98, 133 mg/ml; Cholesterol, 25 mg/ml, PEG-Ceramide C16, 100 mg/ml. The ND98, Cholesterol, and PEG-Ceramide C16 stock solutions can then be combined in a, e.g., 42:48:10 molar ratio. The combined lipid solution can be mixed with aqueous siRNA (e.g., in sodium acetate pH 5) such that the final ethanol concentration is about 35-45% and the final sodium acetate concentration is about 100-300 mM. Lipid-siRNA nanoparticles typically form spontaneously upon mixing. Depending on the desired particle size distribution, the resultant nanoparticle mixture can be extruded through a polycarbonate membrane (e.g., 100 nm cut-off) using, for example, a thermobarrel extruder, such as Lipex Extruder (Northern Lipids, Inc). In some cases, the extrusion step can be omitted. Ethanol removal and simultaneous buffer exchange can be accomplished by, for example, dialysis or tangential flow filtration. Buffer can be exchanged with, for example, phosphate buffered saline (PBS) at about pH 7, e.g., about pH 6.9, about pH 7.0, about pH 7.1, about pH 7.2, about pH 7.3, or about pH 7.4.

›Definitions · 14 of 19

LNP01 formulations are described, e.g., in International Application Publication No. WO 2008/042973, which is hereby incorporated by reference.

Additional exemplary lipid-siRNA formulations are as follows:

LNP09 formulations and XTC comprising formulations are described, e.g., in U.S. Provisional Ser. No. 61/239,686, filed Sep. 3, 2009, which is hereby incorporated by reference.

LNP11 formulations and MC3 comprising formulations are described, e.g., in U.S. Provisional Ser. No. 61/244,834, filed Sep. 22, 2009, which is hereby incorporated by reference.

LNP12 formulations and TechG1 comprising formulations are described, e.g., in U.S. Provisional Ser. No. 61/175,770, filed May 5, 2009, which is hereby incorporated by reference.

Formulations prepared by either the standard or extrusion-free method can be characterized in similar manners. For example, formulations are typically characterized by visual inspection. They should be whitish translucent solutions free from aggregates or sediment. Particle size and particle size distribution of lipid-nanoparticles can be measured by light scattering using, for example, a Malvern Zetasizer Nano ZS (Malvern, USA). Particles should be about 20-300 nm, such as 40-100 nm in size. The particle size distribution should be unimodal. The total siRNA concentration in the formulation, as well as the entrapped fraction, is estimated using a dye exclusion assay. A sample of the formulated siRNA can be incubated with an RNA-binding dye, such as Ribogreen (Molecular Probes) in the presence or absence of a formulation disrupting surfactant, e.g., 0.5% Triton-X100. The total siRNA in the formulation can be determined by the signal from the sample containing the surfactant, relative to a standard curve. The entrapped fraction is determined by subtracting the “free” siRNA content (as measured by the signal in the absence of surfactant) from the total siRNA content. Percent entrapped siRNA is typically >85%. For SNALP formulation, the particle size is at least 30 nm, at least 40 nm, at least 50 nm, at least 60 nm, at least 70 nm, at least 80 nm, at least 90 nm, at least 100 nm, at least 110 nm, and at least 120 nm. The suitable range is typically about at least 50 nm to about at least 110 nm, about at least 60 nm to about at least 100 nm, or about at least 80 nm to about at least 90 nm.

Compositions and formulations for oral administration include powders or granules, microparticulates, nanoparticulates, suspensions or solutions in water or non-aqueous media, capsules, gel capsules, sachets, tablets or minitablets. Thickeners, flavoring agents, diluents, emulsifiers, dispersing aids or binders may be desirable. In some embodiments, oral formulations are those in which dsRNAs featured in the invention are administered in conjunction with one or more penetration enhancers surfactants and chelators. Suitable surfactants include fatty acids and/or esters or salts thereof, bile acids and/or salts thereof. Suitable bile acids/salts include chenodeoxycholic acid (CDCA) and ursodeoxychenodeoxycholic acid (UDCA), cholic acid, dehydrocholic acid, deoxycholic acid, glucholic acid, glycholic acid, glycodeoxycholic acid, taurocholic acid, taurodeoxycholic acid, sodium tauro-24,25-dihydro-fusidate and sodium glycodihydrofusidate. Suitable fatty acids include arachidonic acid, undecanoic acid, oleic acid, lauric acid, caprylic acid, capric acid, myristic acid, palmitic acid, stearic acid, linoleic acid, linolenic acid, dicaprate, tricaprate, monoolein, dilaurin, glyceryl 1-monocaprate, 1-dodecylazacycloheptan-2-one, an acylcarnitine, an acylcholine, or a monoglyceride, a diglyceride or a pharmaceutically acceptable salt thereof (e.g., sodium). In some embodiments, combinations of penetration enhancers are used, for example, fatty acids/salts in combination with bile acids/salts. One exemplary combination is the sodium salt of lauric acid, capric acid and UDCA. Further penetration enhancers include polyoxyethylene-9-lauryl ether, polyoxyethylene-20-cetyl ether. DsRNAs featured in the invention may be delivered orally, in granular form including sprayed dried particles, or complexed to form micro or nanoparticles. DsRNA complexing agents include poly-amino acids; polyimines; polyacrylates; polyalkylacrylates, polyoxethanes, polyalkylcyanoacrylates; cationized gelatins, albumins, starches, acrylates, polyethyleneglycols (PEG) and starches; polyalkylcyanoacrylates; DEAE-derivatized polyimines, pollulans, celluloses and starches. Suitable complexing agents include chitosan, N-trimethylchitosan, poly-L-lysine, polyhistidine, polyornithine, polyspermines, protamine, polyvinylpyridine, polythiodiethylaminomethylethylene P(TDAE), polyaminostyrene (e.g., p-amino), poly(methylcyanoacrylate), poly(ethylcyanoacrylate), poly(butylcyanoacrylate), poly(isobutylcyanoacrylate), poly(isohexylcynaoacrylate), DEAE-methacrylate, DEAE-hexylacrylate, DEAE-acrylamide, DEAE-albumin and DEAE-dextran, polymethylacrylate, polyhexylacrylate, poly(D,L-lactic acid), poly(DL-lactic-co-glycolic acid (PLGA), alginate, and polyethyleneglycol (PEG). Oral formulations for dsRNAs and their preparation are described in detail in U.S. Pat. No. 6,887,906, US Publn. No. 20030027780, and U.S. Pat. No. 6,747,014, each of which is incorporated herein by reference.

Compositions and formulations for parenteral, intraparenchymal (into the brain), intrathecal, intraventricular or intrahepatic administration may include sterile aqueous solutions which may also contain buffers, diluents and other suitable additives such as, but not limited to, penetration enhancers, carrier compounds and other pharmaceutically acceptable carriers or excipients.

Pharmaceutical compositions of the present invention include, but are not limited to, solutions, emulsions, and liposome-containing formulations. These compositions may be generated from a variety of components that include, but are not limited to, preformed liquids, self-emulsifying solids and self-emulsifying semisolids. Particularly preferred are formulations that target the liver when treating hepatic disorders such as hepatic carcinoma.

›Definitions · 15 of 19

The pharmaceutical formulations of the present invention, which may conveniently be presented in unit dosage form, may be prepared according to conventional techniques well known in the pharmaceutical industry. Such techniques include the step of bringing into association the active ingredients with the pharmaceutical carrier(s) or excipient(s). In general, the formulations are prepared by uniformly and intimately bringing into association the active ingredients with liquid carriers or finely divided solid carriers or both, and then, if necessary, shaping the product.

The compositions of the present invention may be formulated into any of many possible dosage forms such as, but not limited to, tablets, capsules, gel capsules, liquid syrups, soft gels, suppositories, and enemas. The compositions of the present invention may also be formulated as suspensions in aqueous, non-aqueous or mixed media. Aqueous suspensions may further contain substances which increase the viscosity of the suspension including, for example, sodium carboxymethylcellulose, sorbitol and/or dextran. The suspension may also contain stabilizers.

Emulsions

The compositions of the present invention may be prepared and formulated as emulsions. Emulsions are typically heterogeneous systems of one liquid dispersed in another in the form of droplets usually exceeding 0.1 μm in diameter (Idson, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 199; Rosoff, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., Volume 1, p. 245; Block in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 2, p. 335; Higuchi et al., in Remington's Pharmaceutical Sciences, Mack Publishing Co., Easton, Pa., 1985, p. 301). Emulsions are often biphasic systems comprising two immiscible liquid phases intimately mixed and dispersed with each other. In general, emulsions may be of either the water-in-oil (w/o) or the oil-in-water (o/w) variety. When an aqueous phase is finely divided into and dispersed as minute droplets into a bulk oily phase, the resulting composition is called a water-in-oil (w/o) emulsion. Alternatively, when an oily phase is finely divided into and dispersed as minute droplets into a bulk aqueous phase, the resulting composition is called an oil-in-water (o/w) emulsion. Emulsions may contain additional components in addition to the dispersed phases, and the active drug which may be present as a solution in either the aqueous phase, oily phase or itself as a separate phase. Pharmaceutical excipients such as emulsifiers, stabilizers, dyes, and anti-oxidants may also be present in emulsions as needed. Pharmaceutical emulsions may also be multiple emulsions that are comprised of more than two phases such as, for example, in the case of oil-in-water-in-oil (o/w/o) and water-in-oil-in-water (w/o/w) emulsions. Such complex formulations often provide certain advantages that simple binary emulsions do not. Multiple emulsions in which individual oil droplets of an o/w emulsion enclose small water droplets constitute a w/o/w emulsion. Likewise a system of oil droplets enclosed in globules of water stabilized in an oily continuous phase provides an o/w/o emulsion.

Emulsions are characterized by little or no thermodynamic stability. Often, the dispersed or discontinuous phase of the emulsion is well dispersed into the external or continuous phase and maintained in this form through the means of emulsifiers or the viscosity of the formulation. Either of the phases of the emulsion may be a semisolid or a solid, as is the case of emulsion-style ointment bases and creams. Other means of stabilizing emulsions entail the use of emulsifiers that may be incorporated into either phase of the emulsion. Emulsifiers may broadly be classified into four categories: synthetic surfactants, naturally occurring emulsifiers, absorption bases, and finely dispersed solids (Idson, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 199).

Synthetic surfactants, also known as surface active agents, have found wide applicability in the formulation of emulsions and have been reviewed in the literature (Rieger, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 285; Idson, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), Marcel Dekker, Inc., New York, N.Y., 1988, volume 1, p. 199). Surfactants are typically amphiphilic and comprise a hydrophilic and a hydrophobic portion. The ratio of the hydrophilic to the hydrophobic nature of the surfactant has been termed the hydrophile/lipophile balance (HLB) and is a valuable tool in categorizing and selecting surfactants in the preparation of formulations. Surfactants may be classified into different classes based on the nature of the hydrophilic group: nonionic, anionic, cationic and amphoteric (Rieger, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 285).

Naturally occurring emulsifiers used in emulsion formulations include lanolin, beeswax, phosphatides, lecithin and acacia. Absorption bases possess hydrophilic properties such that they can soak up water to form w/o emulsions yet retain their semisolid consistencies, such as anhydrous lanolin and hydrophilic petrolatum. Finely divided solids have also been used as good emulsifiers especially in combination with surfactants and in viscous preparations. These include polar inorganic solids, such as heavy metal hydroxides, nonswelling clays such as bentonite, attapulgite, hectorite, kaolin, montmorillonite, colloidal aluminum silicate and colloidal magnesium aluminum silicate, pigments and nonpolar solids such as carbon or glyceryl tristearate.

A large variety of non-emulsifying materials are also included in emulsion formulations and contribute to the properties of emulsions. These include fats, oils, waxes, fatty acids, fatty alcohols, fatty esters, humectants, hydrophilic colloids, preservatives and antioxidants (Block, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 335; Idson, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 199).

›Definitions · 16 of 19

Hydrophilic colloids or hydrocolloids include naturally occurring gums and synthetic polymers such as polysaccharides (for example, acacia, agar, alginic acid, carrageenan, guar gum, karaya gum, and tragacanth), cellulose derivatives (for example, carboxymethylcellulose and carboxypropylcellulose), and synthetic polymers (for example, carbomers, cellulose ethers, and carboxyvinyl polymers). These disperse or swell in water to form colloidal solutions that stabilize emulsions by forming strong interfacial films around the dispersed-phase droplets and by increasing the viscosity of the external phase.

Since emulsions often contain a number of ingredients such as carbohydrates, proteins, sterols and phosphatides that may readily support the growth of microbes, these formulations often incorporate preservatives. Commonly used preservatives included in emulsion formulations include methyl paraben, propyl paraben, quaternary ammonium salts, benzalkonium chloride, esters of p-hydroxybenzoic acid, and boric acid. Antioxidants are also commonly added to emulsion formulations to prevent deterioration of the formulation. Antioxidants used may be free radical scavengers such as tocopherols, alkyl gallates, butylated hydroxyanisole, butylated hydroxytoluene, or reducing agents such as ascorbic acid and sodium metabisulfite, and antioxidant synergists such as citric acid, tartaric acid, and lecithin.

The application of emulsion formulations via dermatological, oral and parenteral routes and methods for their manufacture have been reviewed in the literature (Idson, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 199). Emulsion formulations for oral delivery have been very widely used because of ease of formulation, as well as efficacy from an absorption and bioavailability standpoint (Rosoff, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 245; Idson, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 199). Mineral-oil base laxatives, oil-soluble vitamins and high fat nutritive preparations are among the materials that have commonly been administered orally as o/w emulsions.

In one embodiment of the present invention, the compositions of dsRNAs and nucleic acids are formulated as microemulsions. A microemulsion may be defined as a system of water, oil and amphiphile which is a single optically isotropic and thermodynamically stable liquid solution (Rosoff, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 245). Typically microemulsions are systems that are prepared by first dispersing an oil in an aqueous surfactant solution and then adding a sufficient amount of a fourth component, generally an intermediate chain-length alcohol to form a transparent system. Therefore, microemulsions have also been described as thermodynamically stable, isotropically clear dispersions of two immiscible liquids that are stabilized by interfacial films of surface-active molecules (Leung and Shah, in: Controlled Release of Drugs: Polymers and Aggregate Systems, Rosoff, M., Ed., 1989, VCH Publishers, New York, pages 185-215). Microemulsions commonly are prepared via a combination of three to five components that include oil, water, surfactant, cosurfactant and electrolyte. Whether the microemulsion is of the water-in-oil (w/o) or an oil-in-water (o/w) type is dependent on the properties of the oil and surfactant used and on the structure and geometric packing of the polar heads and hydrocarbon tails of the surfactant molecules (Schott, in Remington's Pharmaceutical Sciences, Mack Publishing Co., Easton, Pa., 1985, p. 271).

The phenomenological approach utilizing phase diagrams has been extensively studied and has yielded a comprehensive knowledge, to one skilled in the art, of how to formulate microemulsions (Rosoff, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 245; Block, in Pharmaceutical Dosage Forms, Lieberman, Rieger and Banker (Eds.), 1988, Marcel Dekker, Inc., New York, N.Y., volume 1, p. 335). Compared to conventional emulsions, microemulsions offer the advantage of solubilizing water-insoluble drugs in a formulation of thermodynamically stable droplets that are formed spontaneously.

Surfactants used in the preparation of microemulsions include, but are not limited to, ionic surfactants, non-ionic surfactants, Brij 96, polyoxyethylene oleyl ethers, polyglycerol fatty acid esters, tetraglycerol monolaurate (ML310), tetraglycerol monooleate (MO310), hexaglycerol monooleate (PO310), hexaglycerol pentaoleate (PO500), decaglycerol monocaprate (MCA750), decaglycerol monooleate (MO750), decaglycerol sequioleate (SO750), decaglycerol decaoleate (DAO750), alone or in combination with cosurfactants. The cosurfactant, usually a short-chain alcohol such as ethanol, 1-propanol, and 1-butanol, serves to increase the interfacial fluidity by penetrating into the surfactant film and consequently creating a disordered film because of the void space generated among surfactant molecules. Microemulsions may, however, be prepared without the use of cosurfactants and alcohol-free self-emulsifying microemulsion systems are known in the art. The aqueous phase may typically be, but is not limited to, water, an aqueous solution of the drug, glycerol, PEG300, PEG400, polyglycerols, propylene glycols, and derivatives of ethylene glycol. The oil phase may include, but is not limited to, materials such as Captex 300, Captex 355, Capmul MCM, fatty acid esters, medium chain (C8-C12) mono, di, and tri-glycerides, polyoxyethylated glyceryl fatty acid esters, fatty alcohols, polyglycolized glycerides, saturated polyglycolized C8-C10 glycerides, vegetable oils and silicone oil.

Microemulsions are particularly of interest from the standpoint of drug solubilization and the enhanced absorption of drugs. Lipid based microemulsions (both o/w and w/o) have been proposed to enhance the oral bioavailability of drugs, including peptides (Constantinides et al., Pharmaceutical Research, 1994, 11, 1385-1390; Ritschel, Meth. Find. Exp. Clin. Pharmacol., 1993, 13, 205). Microemulsions afford advantages of improved drug solubilization, protection of drug from enzymatic hydrolysis, possible enhancement of drug absorption due to surfactant-induced alterations in membrane fluidity and permeability, ease of preparation, ease of oral administration over solid dosage forms, improved clinical potency, and decreased toxicity (Constantinides et al., Pharmaceutical Research, 1994, 11, 1385; Ho et al., J. Pharm. Sci., 1996, 85, 138-143). Often microemulsions may form spontaneously when their components are brought together at ambient temperature. This may be particularly advantageous when formulating thermolabile drugs, peptides or dsRNAs. Microemulsions have also been effective in the transdermal delivery of active components in both cosmetic and pharmaceutical applications. It is expected that the microemulsion compositions and formulations of the present invention will facilitate the increased systemic absorption of dsRNAs and nucleic acids from the gastrointestinal tract, as well as improve the local cellular uptake of dsRNAs and nucleic acids.

›Definitions · 17 of 19

Microemulsions of the present invention may also contain additional components and additives such as sorbitan monostearate (Grill 3), Labrasol, and penetration enhancers to improve the properties of the formulation and to enhance the absorption of the dsRNAs and nucleic acids of the present invention. Penetration enhancers used in the microemulsions of the present invention may be classified as belonging to one of five broad categories-surfactants, fatty acids, bile salts, chelating agents, and non-chelating non-surfactants (Lee et al., Critical Reviews in Therapeutic Drug Carrier Systems, 1991, p. 92). Each of these classes has been discussed above.

Penetration Enhancers

In one embodiment, the present invention employs various penetration enhancers to effect the efficient delivery of nucleic acids, particularly dsRNAs, to the skin of animals. Most drugs are present in solution in both ionized and nonionized forms. However, usually only lipid soluble or lipophilic drugs readily cross cell membranes. It has been discovered that even non-lipophilic drugs may cross cell membranes if the membrane to be crossed is treated with a penetration enhancer. In addition to aiding the diffusion of non-lipophilic drugs across cell membranes, penetration enhancers also enhance the permeability of lipophilic drugs.

Penetration enhancers may be classified as belonging to one of five broad categories, i.e., surfactants, fatty acids, bile salts, chelating agents, and non-chelating non-surfactants (Lee et al., Critical Reviews in Therapeutic Drug Carrier Systems, 1991, p. 92). Each of the above mentioned classes of penetration enhancers are described below in greater detail.

Surfactants: In connection with the present invention, surfactants (or “surface-active agents”) are chemical entities which, when dissolved in an aqueous solution, reduce the surface tension of the solution or the interfacial tension between the aqueous solution and another liquid, with the result that absorption of dsRNAs through the mucosa is enhanced. In addition to bile salts and fatty acids, these penetration enhancers include, for example, sodium lauryl sulfate, polyoxyethylene-9-lauryl ether and polyoxyethylene-20-cetyl ether) (Lee et al., Critical Reviews in Therapeutic Drug Carrier Systems, 1991, p. 92); and perfluorochemical emulsions, such as FC-43. Takahashi et al., J. Pharm. Pharmacol., 1988, 40, 252).

Fatty acids: Various fatty acids and their derivatives which act as penetration enhancers include, for example, oleic acid, lauric acid, capric acid (n-decanoic acid), myristic acid, palmitic acid, stearic acid, linoleic acid, linolenic acid, dicaprate, tricaprate, monoolein (1-monooleoyl-rac-glycerol), dilaurin, caprylic acid, arachidonic acid, glycerol 1-monocaprate, 1-dodecylazacycloheptan-2-one, acylcarnitines, acylcholines, C.sub.1-10 alkyl esters thereof (e.g., methyl, isopropyl and t-butyl), and mono- and di-glycerides thereof (i.e., oleate, laurate, caprate, myristate, palmitate, stearate, linoleate, etc.) (Lee et al., Critical Reviews in Therapeutic Drug Carrier Systems, 1991, p. 92; Muranishi, Critical Reviews in Therapeutic Drug Carrier Systems, 1990, 7, 1-33; El Hariri et al., J. Pharm. Pharmacol., 1992, 44, 651-654).

Bile salts: The physiological role of bile includes the facilitation of dispersion and absorption of lipids and fat-soluble vitamins (Brunton, Chapter 38 in: Goodman & Gilman's The Pharmacological Basis of Therapeutics, 9th Ed., Hardman et al. Eds., McGraw-Hill, New York, 1996, pp. 934-935). Various natural bile salts, and their synthetic derivatives, act as penetration enhancers. Thus the term “bile salts” includes any of the naturally occurring components of bile as well as any of their synthetic derivatives. Suitable bile salts include, for example, cholic acid (or its pharmaceutically acceptable sodium salt, sodium cholate), dehydrocholic acid (sodium dehydrocholate), deoxycholic acid (sodium deoxycholate), glucholic acid (sodium glucholate), glycholic acid (sodium glycocholate), glycodeoxycholic acid (sodium glycodeoxycholate), taurocholic acid (sodium taurocholate), taurodeoxycholic acid (sodium taurodeoxycholate), chenodeoxycholic acid (sodium chenodeoxycholate), ursodeoxycholic acid (UDCA), sodium tauro-24,25-dihydro-fusidate (STDHF), sodium glycodihydrofusidate and polyoxyethylene-9-lauryl ether (POE) (Lee et al., Critical Reviews in Therapeutic Drug Carrier Systems, 1991, page 92; Swinyard, Chapter 39 In: Remington's Pharmaceutical Sciences, 18th Ed., Gennaro, ed., Mack Publishing Co., Easton, Pa., 1990, pages 782-783; Muranishi, Critical Reviews in Therapeutic Drug Carrier Systems, 1990, 7, 1-33; Yamamoto et al., J. Pharm. Exp. Ther., 1992, 263, 25; Yamashita et al., J. Pharm. Sci., 1990, 79, 579-583).

Chelating Agents: Chelating agents, as used in connection with the present invention, can be defined as compounds that remove metallic ions from solution by forming complexes therewith, with the result that absorption of dsRNAs through the mucosa is enhanced. With regards to their use as penetration enhancers in the present invention, chelating agents have the added advantage of also serving as DNase inhibitors, as most characterized DNA nucleases require a divalent metal ion for catalysis and are thus inhibited by chelating agents (Jarrett, J. Chromatogr., 1993, 618, 315-339). Suitable chelating agents include but are not limited to disodium ethylenediaminetetraacetate (EDTA), citric acid, salicylates (e.g., sodium salicylate, 5-methoxysalicylate and homovanilate), N-acyl derivatives of collagen, laureth-9 and N-amino acyl derivatives of beta-diketones (enamines)(Lee et al., Critical Reviews in Therapeutic Drug Carrier Systems, 1991, page 92; Muranishi, Critical Reviews in Therapeutic Drug Carrier Systems, 1990, 7, 1-33; Buur et al., J. Control Rel., 1990, 14, 43-51).

Non-chelating non-surfactants: As used herein, non-chelating non-surfactant penetration enhancing compounds can be defined as compounds that demonstrate insignificant activity as chelating agents or as surfactants but that nonetheless enhance absorption of dsRNAs through the alimentary mucosa (Muranishi, Critical Reviews in Therapeutic Drug Carrier Systems, 1990, 7, 1-33). This class of penetration enhancers include, for example, unsaturated cyclic ureas, 1-alkyl- and 1-alkenylazacyclo-alkanone derivatives (Lee et al., Critical Reviews in Therapeutic Drug Carrier Systems, 1991, page 92); and non-steroidal anti-inflammatory agents such as diclofenac sodium, indomethacin and phenylbutazone (Yamashita et al., J. Pharm. Pharmacol., 1987, 39, 621-626).

›Definitions · 18 of 19

Carriers

Certain compositions of the present invention also incorporate carrier compounds in the formulation. As used herein, “carrier compound” or “carrier” can refer to a nucleic acid, or analog thereof, which is inert (i.e., does not possess biological activity per se) but is recognized as a nucleic acid by in vivo processes that reduce the bioavailability of a nucleic acid having biological activity by, for example, degrading the biologically active nucleic acid or promoting its removal from circulation. The coadministration of a nucleic acid and a carrier compound, typically with an excess of the latter substance, can result in a substantial reduction of the amount of nucleic acid recovered in the liver, kidney or other extracirculatory reservoirs, presumably due to competition between the carrier compound and the nucleic acid for a common receptor. For example, the recovery of a partially phosphorothioate dsRNA in hepatic tissue can be reduced when it is coadministered with polyinosinic acid, dextran sulfate, polycytidic acid or 4-acetamido-4′isothiocyano-stilbene-2,2′-disulfonic acid (Miyao et al., DsRNA Res. Dev., 1995, 5, 115-121; Takakura et al., DsRNA & Nucl. Acid Drug Dev., 1996, 6, 177-183.

Excipients

In contrast to a carrier compound, a “pharmaceutical carrier” or “excipient” is a pharmaceutically acceptable solvent, suspending agent or any other pharmacologically inert vehicle for delivering one or more nucleic acids to an animal. The excipient may be liquid or solid and is selected, with the planned manner of administration in mind, so as to provide for the desired bulk, consistency, etc., when combined with a nucleic acid and the other components of a given pharmaceutical composition. Typical pharmaceutical carriers include, but are not limited to, binding agents (e.g., pregelatinized maize starch, polyvinylpyrrolidone or hydroxypropyl methylcellulose, etc.); fillers (e.g., lactose and other sugars, microcrystalline cellulose, pectin, gelatin, calcium sulfate, ethyl cellulose, polyacrylates or calcium hydrogen phosphate, etc.); lubricants (e.g., magnesium stearate, talc, silica, colloidal silicon dioxide, stearic acid, metallic stearates, hydrogenated vegetable oils, corn starch, polyethylene glycols, sodium benzoate, sodium acetate, etc.); disintegrants (e.g., starch, sodium starch glycolate, etc.); and wetting agents (e.g., sodium lauryl sulphate, etc).

Pharmaceutically acceptable organic or inorganic excipients suitable for non-parenteral administration which do not deleteriously react with nucleic acids can also be used to formulate the compositions of the present invention. Suitable pharmaceutically acceptable carriers include, but are not limited to, water, salt solutions, alcohols, polyethylene glycols, gelatin, lactose, amylose, magnesium stearate, talc, silicic acid, viscous paraffin, hydroxymethylcellulose, polyvinylpyrrolidone and the like.

Formulations for topical administration of nucleic acids may include sterile and non-sterile aqueous solutions, non-aqueous solutions in common solvents such as alcohols, or solutions of the nucleic acids in liquid or solid oil bases. The solutions may also contain buffers, diluents and other suitable additives. Pharmaceutically acceptable organic or inorganic excipients suitable for non-parenteral administration which do not deleteriously react with nucleic acids can be used.

Suitable pharmaceutically acceptable excipients include, but are not limited to, water, salt solutions, alcohol, polyethylene glycols, gelatin, lactose, amylose, magnesium stearate, talc, silicic acid, viscous paraffin, hydroxymethylcellulose, polyvinylpyrrolidone and the like.

Other Components

The compositions of the present invention may additionally contain other adjunct components conventionally found in pharmaceutical compositions, at their art-established usage levels. Thus, for example, the compositions may contain additional, compatible, pharmaceutically-active materials such as, for example, antipruritics, astringents, local anesthetics or anti-inflammatory agents, or may contain additional materials useful in physically formulating various dosage forms of the compositions of the present invention, such as dyes, flavoring agents, preservatives, antioxidants, opacifiers, thickening agents and stabilizers. However, such materials, when added, should not unduly interfere with the biological activities of the components of the compositions of the present invention. The formulations can be sterilized and, if desired, mixed with auxiliary agents, e.g., lubricants, preservatives, stabilizers, wetting agents, emulsifiers, salts for influencing osmotic pressure, buffers, colorings, flavorings and/or aromatic substances and the like which do not deleteriously interact with the nucleic acid(s) of the formulation.

Aqueous suspensions may contain substances which increase the viscosity of the suspension including, for example, sodium carboxymethylcellulose, sorbitol and/or dextran. The suspension may also contain stabilizers.

In some embodiments, pharmaceutical compositions featured in the invention include (a) one or more dsRNA compounds and (b) one or more anti-cytokine biologic agents which function by a non-RNAi mechanism. Examples of such biologics include, biologics that target IL1β (e.g., anakinra), IL6 (tocilizumab), or TNF (etanercept, infliximab, adlimumab, or certolizumab).

Toxicity and therapeutic efficacy of such compounds can be determined by standard pharmaceutical procedures in cell cultures or experimental animals, e.g., for determining the LD50 (the dose lethal to 50% of the population) and the ED50 (the dose therapeutically effective in 50% of the population). The dose ratio between toxic and therapeutic effects is the therapeutic index and it can be expressed as the ratio LD50/ED50. Compounds that exhibit high therapeutic indices are preferred.

The data obtained from cell culture assays and animal studies can be used in formulating a range of dosage for use in humans. The dosage of compositions featured in the invention lies generally within a range of circulating concentrations that include the ED50 with little or no toxicity. The dosage may vary within this range depending upon the dosage form employed and the route of administration utilized. For any compound used in the methods featured in the invention, the therapeutically effective dose can be estimated initially from cell culture assays. A dose may be formulated in animal models to achieve a circulating plasma concentration range of the compound or, when appropriate, of the polypeptide product of a target sequence (e.g., achieving a decreased concentration of the polypeptide) that includes the IC50 (i.e., the concentration of the test compound which achieves a half-maximal inhibition of symptoms) as determined in cell culture. Such information can be used to more accurately determine useful doses in humans. Levels in plasma may be measured, for example, by high performance liquid chromatography.

›Definitions · 19 of 19

In addition to their administration, as discussed above, the dsRNAs featured in the invention can be administered in combination with other known agents effective in treatment of pathological processes mediated by GNAQ expression. In any event, the administering physician can adjust the amount and timing of dsRNA administration on the basis of results observed using standard measures of efficacy known in the art or described herein.

Methods for Treating Diseases Caused by Expression of a GNAQ Gene

The invention relates in particular to the use of a dsRNA targeting GNAQ and compositions containing at least one such dsRNA for the treatment of a GNAQ-mediated disorder or disease. For example, a dsRNA targeting a GNAQ gene can be useful for the treatment of cancers that have either an activating mutation of GNAQ and/or are the result of overexpression of GNAQ. Tumors to be targeted include uveal melanoma, cutaneous melanoma, Blue nevi, Nevi of Ota, and neuroendocrine tumors (including but not limited to carcinoid tumors, large cell lung cancer, and small cell lung cancer).

A dsRNA targeting a GNAQ gene is also used for treatment of symptoms of disorders, such as uveal melanoma. Symptoms associated include, e.g., melanoma progression, increasing eye pressure, pain in the eye, and impaired peripheral vision.

Owing to the inhibitory effects on GNAQ expression, a composition according to the invention or a pharmaceutical composition prepared therefrom can enhance the quality of life.

The invention further relates to the use of a dsRNA or a pharmaceutical composition thereof, e.g., for treating a GNAQ mediated disorder or disease, in combination with other pharmaceuticals and/or other therapeutic methods, e.g., with known pharmaceuticals and/or known therapeutic methods, such as, for example, those which are currently employed for treating these disorders. In one example, a dsRNA targeting GNAQ can be administered in combination with radiation therapy. In other examples, a dsRNA targeting GNAQ can be administered in combination with a pharmaceutical or therapeutic method for treating a symptom of a GNAQ disease, such as pain medication.

The dsRNA and an additional therapeutic agent can be administered in the same combination, e.g., parenterally, or the additional therapeutic agent can be administered as part of a separate composition or by another method described herein.

The invention features a method of administering a dsRNA targeting GNAQ to a patient having a disease or disorder mediated by GNAQ expression, such as a uveal melanoma. Administration of the dsRNA can stabilize and improve vision, for example, in a patient with uveal melanoma. Patients can be administered a therapeutic amount of dsRNA, such as 0.5 mg/kg, 1.0 mg/kg, 1.5 mg/kg, 2.0 mg/kg, or 2.5 mg/kg dsRNA. The dsRNA can be administered by intravenous infusion over a period of time, such as over a 5 minute, 10 minute, 15 minute, 20 minute, or 25 minute period. The administration is repeated, for example, on a regular basis, such as biweekly (i.e., every two weeks) for one month, two months, three months, four months or longer. After an initial treatment regimen, the treatments can be administered on a less frequent basis. For example, after administration biweekly for three months, administration can be repeated once per month, for six months or a year or longer. Administration of the dsRNA can reduce GNAQ levels in the blood or urine of the patient by at least 20%, 25%, 30%, 40%, 50%, 60%, 70%, 80% or 90% or more.

Before administration of a full dose of the dsRNA, patients can be administered a smaller dose, such as a 5% infusion reaction, and monitored for adverse effects, such as an allergic reaction.

Many GNAQ-associated diseases and disorders are hereditary. Therefore, a patient in need of a GNAQ dsRNA can be identified by taking a family history. A healthcare provider, such as a doctor, nurse, or family member, can take a family history before prescribing or administering a GNAQ dsRNA. A DNA test may also be performed on the patient to identify a mutation in the GNAQ gene, before a GNAQ dsRNA is administered to the patient.

Methods for Inhibiting Expression of a GNAQ Gene

In yet another aspect, the invention provides a method for inhibiting the expression of a GNAQ gene in a mammal. The method includes administering a composition featured in the invention to the mammal such that expression of the target GNAQ gene is reduced or silenced.

When the organism to be treated is a mammal such as a human, the composition may be administered by any means known in the art including, but not limited to oral or parenteral routes, including intracranial (e.g., intraventricular, intraparenchymal and intrathecal), intravenous, intramuscular, subcutaneous, transdermal, airway (aerosol), nasal, rectal, and topical (including buccal and sublingual) administration. In certain embodiments, the compositions are administered by intravenous infusion or injection.

Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Although methods and materials similar or equivalent to those described herein can be used in the practice or testing of the dsRNAs and methods featured in the invention, suitable methods and materials are described below. All publications, patent applications, patents, and other references mentioned herein are incorporated by reference in their entirety. In case of conflict, the present specification, including definitions, will control. In addition, the materials, methods, and examples are illustrative only and not intended to be limiting.

›EXAMPLES

Below are examples of specific embodiments for carrying out the present invention. The examples are offered for illustrative purposes only, and are not intended to limit the scope of the present invention in any way. Efforts have been made to ensure accuracy with respect to numbers used (e.g., amounts, temperatures, etc.), but some experimental error and deviation should, of course, be allowed for.

Other embodiments are, for example, in the claims.

The practice of the present invention will employ, unless otherwise indicated, conventional methods of protein chemistry, biochemistry, recombinant DNA techniques and pharmacology, within the skill of the art. Such techniques are explained fully in the literature. See, e.g., T. E. Creighton, Proteins: Structures and Molecular Properties (W.H. Freeman and Company, 1993); A. L. Lehninger, Biochemistry (Worth Publishers, Inc., current addition); Sambrook, et al., Molecular Cloning: A Laboratory Manual (2nd Edition, 1989); Methods In Enzymology (S. Colowick and N. Kaplan eds., Academic Press, Inc.); Remington's Pharmaceutical Sciences, 18th Edition (Easton, Pa.: Mack Publishing Company, 1990); Carey and Sundberg Advanced Organic Chemistry 3rd Ed. (Plenum Press) Vols A and B (1992).

›Examples3
›Example 1 · 1 of 2

dsRNA Synthesis

Source of Reagents

Where the source of a reagent is not specifically given herein, such reagent may be obtained from any supplier of reagents for molecular biology at a quality/purity standard for application in molecular biology.

Conjugates

For the synthesis of 3′-cholesterol-conjugated siRNAs (herein referred to as -Chol-3′), an appropriately modified solid support is used for RNA synthesis. The modified solid support is prepared as follows:

Diethyl-2-azabutane-1,4-dicarboxylate AA

A 4.7 M aqueous solution of sodium hydroxide (50 mL) is added into a stirred, ice-cooled solution of ethyl glycinate hydrochloride (32.19 g, 0.23 mole) in water (50 mL). Then, ethyl acrylate (23.1 g, 0.23 mole) is added and the mixture is stirred at room temperature until completion of the reaction is ascertained by TLC. After 19 h the solution is partitioned with dichloromethane (3×100 mL). The organic layer is dried with anhydrous sodium sulfate, filtered and evaporated. The residue is distilled to afford AA (28.8 g, 61%).

3-{Ethoxycarbonylmethyl-[6-(9H-fluoren-9-ylmethoxycarbonyl-amino)-hexanoyl]-amino}-propionic acid ethyl ester AB

Fmoc-6-amino-hexanoic acid (9.12 g, 25.83 mmol) is dissolved in dichloromethane (50 mL) and cooled with ice. Diisopropylcarbodiimde (3.25 g, 3.99 mL, 25.83 mmol) is added to the solution at 0° C. It is then followed by the addition of Diethyl-azabutane-1,4-dicarboxylate (5 g, 24.6 mmol) and dimethylamino pyridine (0.305 g, 2.5 mmol). The solution is brought to room temperature and stirred further for 6 h. Completion of the reaction is ascertained by TLC. The reaction mixture is concentrated under vacuum and ethyl acetate is added to precipitate diisopropyl urea. The suspension is filtered. The filtrate is washed with 5% aqueous hydrochloric acid, 5% sodium bicarbonate and water. The combined organic layer is dried over sodium sulfate and concentrated to give the crude product which is purified by column chromatography (50% EtOAC/Hexanes) to yield 11.87 g (88%) of AB.

3-[(6-Amino-hexanoyl)-ethoxycarbonylmethyl-amino]-propionic acid ethyl ester AC

3-{Ethoxycarbonylmethyl-[6-(9H-fluoren-9-ylmethoxycarbonylamino)-hexanoyl]-amino}-propionic acid ethyl ester AB (11.5 g, 21.3 mmol) is dissolved in 20% piperidine in dimethylformamide at 0° C. The solution is continued stirring for 1 h. The reaction mixture is concentrated under vacuum, water is added to the residue, and the product is extracted with ethyl acetate. The crude product is purified by conversion into its hydrochloride salt.

3-({6-[17-(1,5-Dimethyl-hexyl)-10,13-dimethyl-2,3,4,7,8,9,10,11,12,13,14,15,16,17-tetradecahydro-1H-cyclopenta[a]phenanthren-3-yloxycarbonylamino]-hexanoyl}ethoxycarbonylmethyl-amino)-propionic acid ethyl ester AD

The hydrochloride salt of 3-[(6-Amino-hexanoyl)-ethoxycarbonylmethyl-amino]-propionic acid ethyl ester AC (4.7 g, 14.8 mmol) is taken up in dichloromethane. The suspension is cooled to 0° C. on ice. To the suspension diisopropylethylamine (3.87 g, 5.2 mL, 30 mmol) is added. To the resulting solution cholesteryl chloroformate (6.675 g, 14.8 mmol) is added. The reaction mixture is stirred overnight. The reaction mixture is diluted with dichloromethane and washed with 10% hydrochloric acid. The product is purified by flash chromatography (10.3 g, 92%).

1-{6-[17-(1,5-Dimethyl-hexyl)-10,13-dimethyl-2,3,4,7,8,9,10,11,12,13,14,15,16,17-tetradecahydro-1H-cyclopenta[a]phenanthren-3-yloxycarbonylamino]-hexanoyl}-4-oxo-pyrrolidine-3-carboxylic acid ethyl ester AE

Potassium t-butoxide (1.1 g, 9.8 mmol) is slurried in 30 mL of dry toluene. The mixture is cooled to 0° C. on ice and 5 g (6.6 mmol) of diester AD is added slowly with stirring within 20 mins. The temperature is kept below 5° C. during the addition. The stirring is continued for 30 mins at 0° C. and 1 mL of glacial acetic acid is added, immediately followed by 4 g of NaH 2 PO 4 .H 2 O in 40 mL of water The resultant mixture is extracted twice with 100 mL of dichloromethane each and the combined organic extracts are washed twice with 10 mL of phosphate buffer each, dried, and evaporated to dryness. The residue is dissolved in 60 mL of toluene, cooled to 0° C. and extracted with three 50 mL portions of cold pH 9.5 carbonate buffer. The aqueous extracts are adjusted to pH 3 with phosphoric acid, and extracted with five 40 mL portions of chloroform which are combined, dried and evaporated to dryness. The residue is purified by column chromatography using 25% ethylacetate/hexane to afford 1.9 g of b-ketoester (39%).

[6-(3-Hydroxy-4-hydroxymethyl-pyrrolidin-1-yl)-6-oxo-hexyl]-carbamic acid 17-(1,5-dimethyl-hexyl)-10,13-dimethyl-2,3,4,7,8,9,10,11,12,13,14,15,16,17-tetradecahydro-1H-cyclopenta[a]phenanthren-3-yl ester AF

Methanol (2 mL) is added dropwise over a period of 1 h to a refluxing mixture of b-ketoester AE (1.5 g, 2.2 mmol) and sodium borohydride (0.226 g, 6 mmol) in tetrahydrofuran (10 mL). Stirring is continued at reflux temperature for 1 h. After cooling to room temperature, 1 N HCl (12.5 mL) is added, the mixture is extracted with ethylacetate (3×40 mL). The combined ethylacetate layer is dried over anhydrous sodium sulfate and concentrated under vacuum to yield the product which is purified by column chromatography (10% MeOH/CHCl 3 ) (89%).

(6-{3-[Bis-(4-methoxy-phenye-phenyl-methoxymethyl]-4-hydroxy-pyrrolidin-1-yl}-6-oxo-hexyl)-carbamic acid 17-(1,5-dimethyl-hexyl)-10,13-dimethyl-2,3,4,7,8,9,10,11,12,13,14,15,16,17-tetradecahydro-1H-cyclopenta[a]phenanthren-3-yl ester AG

Diol AF (1.25 gm 1.994 mmol) is dried by evaporating with pyridine (2×5 mL) in vacuo. Anhydrous pyridine (10 mL) and 4,4′-dimethoxytritylchloride (0.724 g, 2.13 mmol) are added with stirring. The reaction is carried out at room temperature overnight. The reaction is quenched by the addition of methanol. The reaction mixture is concentrated under vacuum and to the residue dichloromethane (50 mL) is added. The organic layer is washed with 1M aqueous sodium bicarbonate. The organic layer is dried over anhydrous sodium sulfate, filtered and concentrated. The residual pyridine is removed by evaporating with toluene. The crude product is purified by column chromatography (2% MeOH/Chloroform, Rf=0.5 in 5% MeOH/CHCl 3 ) (1.75 g, 95%).

›Example 1 · 2 of 2

Succinic acid mono-(4-[bis-(4-methoxy-phenye-phenyl-methoxymethyl]-1-{6-[17-(1,5-dimethyl-hexyl)-10,13-dimethyl 2,3,4,7,8,9,10,11,12,13,14,15,16,17-tetradecahydro-1H cyclopenta[a]phenanthren-3-yloxycarbonylamino]-hexanoyl}-pyrrolidin-3-yl) ester AH

Compound AG (1.0 g, 1.05 mmol) is mixed with succinic anhydride (0.150 g, 1.5 mmol) and DMAP (0.073 g, 0.6 mmol) and dried in a vacuum at 40° C. overnight. The mixture is dissolved in anhydrous dichloroethane (3 mL), triethylamine (0.318 g, 0.440 mL, 3.15 mmol) is added and the solution is stirred at room temperature under argon atmosphere for 16 h. It is then diluted with dichloromethane (40 mL) and washed with ice cold aqueous citric acid (5 wt %, 30 mL) and water (2×20 mL). The organic phase is dried over anhydrous sodium sulfate and concentrated to dryness. The residue is used as such for the next step.

Cholesterol Derivatised CPG AI

Succinate AH (0.254 g, 0.242 mmol) is dissolved in a mixture of dichloromethane/acetonitrile (3:2, 3 mL). To that solution DMAP (0.0296 g, 0.242 mmol) in acetonitrile (1.25 mL), 2,2′-Dithio-bis(5-nitropyridine) (0.075 g, 0.242 mmol) in acetonitrile/dichloroethane (3:1, 1.25 mL) are added successively. To the resulting solution triphenylphosphine (0.064 g, 0.242 mmol) in acetonitrile (0.6 ml) is added. The reaction mixture turned bright orange in color. The solution is agitated briefly using a wrist-action shaker (5 mins). Long chain alkyl amine-CPG (LCAA-CPG) (1.5 g, 61 mM) is added. The suspension is agitated for 2 h. The CPG is filtered through a sintered funnel and washed with acetonitrile, dichloromethane and ether successively. Unreacted amino groups are masked using acetic anhydride/pyridine. The achieved loading of the CPG is measured by taking UV measurement (37 mM/g).

The synthesis of siRNAs bearing a 5′-12-dodecanoic acid bisdecylamide group (herein referred to as “5′-C32-”) or a 5′-cholesteryl derivative group (herein referred to as “5′-Chol-”) is performed as described in WO 2004/065601, except that, for the cholesteryl derivative, the oxidation step is performed using the Beaucage reagent in order to introduce a phosphorothioate linkage at the 5′-end of the nucleic acid oligomer.

Nucleic acid sequences are represented herein using standard nomenclature, and specifically the abbreviations of Table 1.

›Example 2

siRNA Design and Synthesis

Transcripts

siRNA design was carried out to identify siRNAs targeting the G-alpha q subunit (GNAQ) of a heterotrimeric G gene. Three sets were designed, each specific for a different set of cross species: 1: human and monkey; 2) human, monkey and mouse; and 3) mouse and rat. GNAQ sequences were obtained from the NCBI Refseq collection on Nov. 24, 2008 as follows:

siRNA Design and Specificity Prediction

The predicted specificity of all possible 19mers was determined for each sequence. The GNAQ siRNAs were used in a comprehensive search against the human, cynomolgous monkey, mouse and rat transcriptomes (defined as the set of NM — and XM — records within the NCBI Refseq set for human, mouse and rat, and the ‘core’ sequences from the Unigene clusters for Macaca fascicularis ) using the FASTA algorithm. The Python script ‘offtargetFasta.py’ was then used to parse the alignments and generate a score based on the position and number of mismatches between the siRNA and any potential ‘off-target’ transcript. The off-target score is weighted to emphasize differences in the ‘seed’ region of siRNAs, in positions 2-9 from the 5′ end of the molecule. The off-target score is calculated as follows: mismatches between the oligo and the transcript are given penalties. A mismatch in the seed region in positions 2-9 of the oligo is given a penalty of 2.8; mismatches in the putative cleavage sites 10 and 11 are given a penalty of 1.2, and all other mismatches a penalty of 1. The off-target score for each oligo-transcript pair is then calculated by summing the mismatch penalties. The lowest off-target score from all the oligo-transcript pairs is then determined and used in subsequent sorting of oligos. Both siRNA strands were assigned to a category of specificity according to the calculated scores: a score above 3 qualifies as highly specific, equal to 3 as specific, and between 2.2 and 2.8 as moderately specific. In picking which oligos to synthesize, off-target score of the antisense strand was sorted from high to low.

Synthesis of dsRNA

The sense and antisense strands of the dsRNA duplexes were synthesized on a MerMade 192 synthesizer at 1 μmol scale. For each sense and antisense sequence listed in Tables 2a, 3a, and 4a, sequence were modified as follows and as listed in Tables 2d, 3d, and 4d:

1. In the sense strand, all pyrimidines (U, C) were replaced with corresponding 2′-O-Methyl bases (2′ O-Methyl C and 2′-O-Methyl U); in the antisense strand, all pyrimidines (U, C) adjacent to A (UA, CA) were replaced with corresponding 2′-O-Methyl bases (2′ O-Methyl C and 2′-O-Methyl U); a 2 base dTdT extension at the 3′ end of both strands was introduced. 2. In the sense strand, all pyrimidines (U, C) are replaced with corresponding 2′-O-Methyl bases (2′ O-Methyl C and 2′-O-Methyl U); in the antisense strand, all pyrimidines (U, C) adjacent to A (UA, CA) are replaced with corresponding 2′-O-Methyl bases (2′ O-Methyl C and 2′-O-Methyl U); a 2 base dTsdT (including a phosphorothioate) extension at the 3′ end of both strands was introduced. 3. In the sense strand, all pyrimidines (U, C) are replaced with corresponding 2′-O-Methyl bases (2′ O-Methyl C and 2′-O-Methyl U); in the antisense strand, all pyrimidines (U, C) adjacent to A (UA, CA) and all U adjacent to another U (UU) or G (UG) were replaced with corresponding 2′-O-Methyl bases (2′ O-Methyl C and 2′-O-Methyl U); a 2 base dTsdT (including a phosphorothioate) extension at the 3′ end of both strands was introduced.

The synthesis of each strand of the dsRNA used solid supported oligonucleotide synthesis using phosphoramidite chemistry.

Synthesis was performed at 1 umole scale in 96 well plates. The amidite solutions were prepared at 0.1M concentration and ethyl thio tetrazole (0.6M in Acetonitrile) was used as an activator. The synthesized sequences were cleaved and deprotected in 96 well plates, using methylamine in the first step and triethylamine 3HF in the second step. The crude sequences thus obtained were precipitated using acetone: ethanol mix and the pellet were re-suspended in 0.5M sodium acetate buffer. Samples from each sequence were analyzed by LC-MS and the resulting mass data confirmed the identity of the sequences. A selected set of samples were also analyzed by IEX chromatography.

All sequences were purified on AKTA explorer purification system using Source 15Q column. A single peak corresponding to the full length sequence was collected in the eluent and was subsequently analyzed for purity by ion exchange chromatography.

The purified sequences were desalted on a Sephadex G25 column using AKTA purifier. The desalted sequences were analyzed for concentration and purity. For the preparation of duplexes, equimolar amounts of sense and antisense strand were heated in the required buffer (e.g. 1×PBS) at 95° C. for 2-5 minutes and slowly cooled to room temperature. Integrity of the duplex was confirmed by HPLC analysis.

Synthesis and Duplex Annealing for In Vivo Studies

›Step 1. Oligonucleotide Synthesis

Oligonucleotides for in vivo studies were synthesized on an AKTAoligopilot synthesizer or on an ABI 394 DNA/RNA synthesizer. Commercially available controlled pore glass solid support (dT-CPG, 500 {acute over (Å)}, Prime Synthesis) or the in-house synthesized solid support cholesterol-CPG, AI were used for the synthesis. Other ligand conjugated solid supports amenable to the invention are described in U.S. patent application Ser. No. 10/946,873 filed Sep. 21, 2004, which is hereby incorporated by reference for all purposes. RNA phosphoramidites and 2′-O-methyl modified RNA phosphoramidites with standard protecting groups (5′-O-dimethoxytrityl-N6-benzoyl-2′-t-butyldimethylsilyl-adenosine-3′-O—N,N′-diisopropyl-2-cyanoethylphosphoramidite, 5′-O-dimethoxytrityl-N4-acetyl-2′-t-butyldimethylsilyl-cytidine-3′-O—N,N′-diisopropyl-2-cyanoethylphosphoramidite, 5′-O-dimethoxytrityl-N2-isobutryl-2′-t-butyldimethylsilyl-guanosine-3′-O—N,N′-diisopropyl-2-cyanoethylphosphoramidite, 5′-O-dimethoxytrityl-2′-t-butyldimethylsilyl-uridine-3′-O—N,N′-diisopropyl-2-cyanoethylphosphoramidite, 5′-O-dimethoxytrityl-N6-benzoyl-2′-O-methyl-adenosine-3′-O—N,N′-diisopropyl-2-cyanoethylphosphoramidite, 5′-O-dimethoxytrityl-N4-acetyl-2′-O-methyl-cytidine-3′-O—N,N′-diisopropyl-2-cyanoethylphosphoramidite, 5′-O-dimethoxytrityl-N2-isobutryl-2′-O-methyl-guanosine-3′-O—N,N′-diisopropyl-2-cyanoethylphosphoramidite, 5′-O-dimethoxytrityl-2′-O-methyl-uridine-3′-O—N,N′-diisopropyl-2-cyanoethylphosphoramidite and 5′-O-dimethoxytrityl-2′-deoxy-thymidine-3′-O—N,N′-diisopropyl-2-cyanoethylphosphoramidite) were obtained commercially (e.g. from Pierce Nucleic Acids Technologies and ChemGenes Research).

For the syntheses on AKTAoligopilot synthesizer, all phosphoramidites were used at a concentration of 0.2 M in CH 3 CN except for guanosine and 2′-O-methyl-uridine, which were used at 0.2 M concentration in 10% THF/CH 3 CN (v/v). Coupling/recycling time of 16 minutes was used for all phosphoramidite couplings. The activator was 5-ethyl-thio-tetrazole (0.75 M, American International Chemicals). For the PO-oxidation, 50 mM iodine in water/pyridine (10:90 v/v) was used and for the PS-oxidation 2% PADS (GL Synthesis) in 2,6-lutidine/CH 3 CN (1:1 v/v) was used. For the syntheses on ABI 394 DNA/RNA synthesizer, all phosphoramidites were used at a concentration of 0.15 M in CH 3 CN except for 2′-O-methyl-uridine, which was used at 0.15 M concentration in 10% THF/CH 3 CN (v/v). Coupling time of 10 minutes was used for all phosphoramidite couplings. The activator was 5-ethyl-thio-tetrazole (0.25 M, Glen Research). For the PO-oxidation, 20 mM iodine in water/pyridine (Glen Research) was used and for the PS-oxidation 0.1M DDTT (AM Chemicals) in pyridine was used.

›Step 2. Deprotection of Oligonucleotides

After completion of synthesis, the support was transferred to a 100 mL glass bottle (VWR). The oligonucleotide was cleaved from the support with simultaneous deprotection of base and phosphate groups with 40 mL of a 40% aq. methyl amine (Aldrich) 90 mins at 45° C. The bottle was cooled briefly on ice and then the methylamine was filtered into a new 500 mL bottle. The CPG was washed three times with 40 mL portions of DMSO. The mixture was then cooled on dry ice.

In order to remove the tert-butyldimethylsilyl (TBDMS) groups at the 2′ position, 60 mL triethylamine trihydrofluoride (Et3N—HF) was added to the above mixture. The mixture was heated at 40° C. for 60 minutes. The reaction was then quenched with 220 mL of 50 mM sodium acetate (pH 5.5) and stored in the freezer until purification.

Sequences Synthesized on the ABI DNA/RNA Synthesizer

After completion of synthesis, the support was transferred to a 15 mL tube (VWR). The oligonucleotide was cleaved from the support with simultaneous deprotection of base and phosphate groups with 7 mL of a 40% aq. methyl amine (Aldrich) 15 mins at 65° C. The bottle was cooled briefly on ice and then the methylamine solution was filtered into a 100 mL bottle (VWR). The CPG was washed three times with 7 mL portions of DMSO. The mixture was then cooled on dry ice.

In order to remove the tert-butyldimethylsilyl (TBDMS) groups at the 2′ position, 10.5 mL triethylamine trihydrofluoride (Et3N—HF) was added to the above mixture. The mixture was heated at 60° C. for 15 minutes. The reaction was then quenched with 38.5 mL of 50 mM sodium acetate (pH 5.5) and stored in the freezer until purification.

›Step 3. Quantitation of Crude Oligonucleotides

For all samples, a 10 μL aliquot was diluted with 990 μL of deionised nuclease free water (1.0 mL) and the absorbance reading at 260 nm obtained.

›Step 4. Purification of Oligonucleotides

Unconjugated Oligonucleotides

The unconjugated samples were purified by HPLC on a TSK-Gel SuperQ-5PW (20) column packed in house (17.3×5 cm) or on a commercially available TSK-Gel SuperQ-5PW column (15×0.215 cm) available from TOSOH Bioscience. The buffers were 20 mM phosphate in 10% CH 3 CN, pH 8.5 (buffer A) and 20 mM phosphate, 1.0 M NaBr in 10% CH 3 CN, pH 8.5 (buffer B). The flow rate was 50.0 mL/min for the in house packed column and 10.0 ml/min for the commercially obtained column. Wavelengths of 260 and 294 nm were monitored. The fractions containing the full-length oligonucleotides were pooled together, evaporated, and reconstituted to ˜100 mL with deionised water.

Cholesterol-Conjugated Oligonucleotides

The cholesterol conjugated sequences were HPLC purified on RPC-Source15 reverse-phase columns packed in house (17.3×5 cm or 15×2 cm). The buffers were 20 mM NaOAc in 10% CH 3 CN (buffer A) and 20 mM NaOAc in 70% CH 3 CN (buffer B). The flow rate was 50.0 mL/min for the 17.3×5 cm column and 12.0 ml/min for the 15×2 cm column. Wavelengths of 260 and 284 nm were monitored. The fractions containing the full-length oligonucleotides were pooled, evaporated, and reconstituted to 100 mL with deionised water.

›Step 5. Desalting of Purified Oligonucleotides

The purified oligonucleotides were desalted on either an AKTA Explorer or an AKTA Prime system (Amersham Biosciences) using a Sephadex G-25 column packed in house. First, the column was washed with water at a flow rate of 40 mL/min for 20-30 min. The sample was then applied in 40-60 mL fractions. The eluted salt-free fractions were combined, dried, and reconstituted in ˜50 mL of RNase free water.

›Step 6. Purity Analysis

Approximately 0.3 OD of each of the desalted oligonucleotides was diluted in water to 300 μL and were analyzed by CGE, ion exchange HPLC, and LC/MS.

›Step 7. Duplex Formation

For the preparation of duplexes, equimolar amounts of sense and antisense strand were heated in the required buffer (e.g. 1×PBS) at 95° C. for 5 min and slowly cooled to room temperature. Integrity of the duplex was confirmed by HPLC analysis.

Tables of dsRNA Sequences

Table 2 provides sequences used for design of dsRNA targeting human GNAQ that will cross react with monkey GNAQ. Table 3 provides sequences used for design of dsRNA targeting human GNAQ that will cross react with both monkey and rat GNAQ. Table 4 provides sequences used for design of dsRNA targeting rat GNAQ that will cross react with mouse GNAQ.

Tables 2a, 3a, and 4a following tables provide the sense and antisense strand of GNAQ target sequences. Tables 2b, 3b, and 4b provide exemplary sense and antisense dsRNA strands with a NN 2 base overhang. Tables 2c, 3c, and 4c provide exemplary sense and antisense dsRNA strands with dTdT 2 base overhang. Tables 2d, 3d, and 4d provide sequences of dsRNA that were synthesized, including the dTdT 2 base overhang and modified nucleotides.

›Examples7
›Example 3

In Vitro Screening

For in vitro screening, cells expressing GNAQ were utilized. Some exemplary cell lines expressing GNAQ include, but are not limited to, human melanoma cell lines OMM1.3 and MEL 285, and Mel 202. OMM1.3 are liver metastisis cells that include a mutant GNAQ gene. MEL285 are primary uveal melanoma cells that include a WT GNAQ gene. MEL202 are also primary uveal melanoma but include a mutant GNAQ gene. A549 (lung carcinoma) and A375 (malignant melanoma) are cancer cell lines expressing WT GNAQ.

Cells expressing human GNAQ with the activating GNAQ mutation were obtained following the method outlined in PCT publication number WO2008/098208, which is incorporated herein in its entirety for all purposes.

The dsRNAs were screened for in vitro inhibition of the target gene. Tissue culture cells were transfected with the dsRNA. Target gene mRNA levels were assayed using qPCR (real time PCR).

Cell Culture and Transfections:

A549, A375, OMM1.3 and UMEL202 cells were grown to near confluence at 37° C. in an atmosphere of 5% CO 2 in specific medium (ATCC) supplemented with 10% FBS, streptomycin, and glutamine (ATCC) before being released from the plate by trypsinization. Reverse transfection was carried out by adding 5 μl of Opti-MEM to 5 μl of siRNA duplexes (Tables 5-7) per well into a 96-well plate along with 10 μl of Opti-MEM plus 0.2 μl of Lipofectamine RNAiMax per well (Invitrogen, Carlsbad Calif. cat #13778-150) and incubated at room temperature for 15 minutes. 80 μl of complete growth media without antibiotics containing 2×10 4 cells were then added. Cells were incubated for 24 hours prior to RNA purification. Single dose experiments were performed at either 0.1 nM, 1.0 nM, or and 10.0 nM final duplex concentration and dose response experiments were done with 10, 1.66, 0.27, 0.046, 0.0077, 0.0012, 0.00021, 0.000035 nM of selected duplexes.

Total RNA Isolation Using MagMAX-96 Total RNA Isolation Kit (Applied Biosystem, Foster City Calif., Part #: AM1830):

Cells were harvested and lysed in 140 μl of Lysis/Binding Solution then mixed for 1 minute at 850 rpm using and Eppendorf Thermomixer (the mixing speed was the same throughout the process). Twenty micro liters of magnetic beads were added into cell-lysate and mixed for 5 minutes. Magnetic beads were captured using magnetic stand and the supernatant was removed without disturbing the beads. After removing supernatant, magnetic beads were washed with Wash Solution 1 (isopropanol added) and mixed for 1 minute. Beads were capture again and supernatant removed. Beads were then washed with 150 μl Wash Solution 2 (Ethanol added), captured and supernatant was removed. 50 ul of DNase mixture (MagMax turbo DNase Buffer and Turbo DNase) was then added to the beads and they were mixed for 10 to 15 minutes. After mixing, 100 μl of RNA Rebinding Solution was added and mixed for 3 minutes. Supernatant was removed and magnetic beads were washed again with 150 μl Wash Solution 2 and mixed for 1 minute and supernatant was removed completely. The magnetic beads were mixed for 2 minutes to dry before RNA it was eluted with 50 μl of water.

Total RNA Isolation Using RNAqueous®-96 Well Plate Procedure (Applied Biosystem, Foster City Calif., Part #: 1812):

Cells were lysed for 5 minutes in 200 μl of Lysis/Binding Solution. 100 μl of 100% ethanol was added into each cell lysate and the total 300 μl lysates were transferred into one wells of “filter plate”. Filter plate was centrifuged at RCF of 10,000-15,000 g for 2 minutes. 300 μl Wash Solution was then added into each well and the plate was centrifuged at RCF of 10,000-15,000 g for 2 minutes. For DNase treatment, 20 ul of DNase mixture was added on top of each filter and the plate was incubated for 15 minutes at room temperature. RNA rebinding was performed by washing filters with 200 μL of Rebinding Mix and 1 minute later samples were centrifuged at RCF of 10,000-15,000 g for 2 minutes. Filter was washed then twice with 200 μl of Wash Solution and centrifuged at RCF of 10,000-15,000 g for 2 minutes. A third centrifugation of 2 minutes was then applied after the reservoir unit was emptied and elution of the RNA was done into a clean culture plate by adding into the filters 50 μL of preheated (80° C.) Nuclease-free Water.

cDNA Synthesis Using ABI High Capacity cDNA Reverse Transcription Kit (Applied Biosystems, Foster City, Calif., Cat #4368813):

A master mix of 2 μl 10× Buffer, 0.8 μl 25×dNTPs, 2 μl Random primers, 1 μl Reverse Transcriptase, 1 μl RNase inhibitor and 3.2 μl of H2O per reaction were added into 10 μl total RNA. cDNA was generated using a Bio-Rad C-1000 or S-1000 thermal cycler (Hercules, Calif.) through the following steps: 25° C. 10 min, 37° C. 120 min, 85° C. 5 sec, 4° C. hold.

Real Time PCR:

2 μl of cDNA was added to a master mix of 1 μl GAPDH TaqMan Probe (Human GAPD Endogenous Control VIC/MGB Probe, Primer Limited Applied Biosystems Cat #4326317E), 1 μl GNAQ TaqMan probe (Applied Biosystems cat # HS00387073_M1) and 10 μl TaqMan Universal PCR Master Mix (Applied Biosystems Cat #4324018) per well in a MicroAmp Optical 96 well plate (Applied Biosystems cat #4326659). Real time PCR was done in an ABI 7900HT Real Time PCR system (Applied Biosystems) using the ΔΔCt(RQ) assay. All reactions were done in triplicate.

Real time data were analyzed using the ΔΔCt method and normalized to assays performed from cells transfected with 10 nM BlockIT fluorescent Oligo (Invitrogen Cat #2013) or 10 nM AD-1955 a duplex that targets luciferase to calculate fold change.

Results

A total of 94 chemically modified siRNAs were screened. Single dose screens were performed in A549 (lung carcinoma), A375 (malignant melanoma) and uveal melanoma cell lines GNAQ mut , OMM1.3, and MEL202. Tables 8-14 show the results of the single-dose in vitro siRNA screen.

Duplexes with desirable levels of GNAQ inhibition were selected for further analysis of IC50 in A549 (lung carcinoma) MEL202 (GNAQ mut uveal melanoma), and OMM1.3 cells (GNAQ mut liver metastisis). Tables 15-17 show the results of the IC50 experiments in A549, MEL202, and OMM1.3 cells. Dose response screen identified pM IC50s in lung carcinoma cell line and GNAQmut uveal melanoma MEL202 and OMM1.3, including duplexes AD-20057 and AD-20051.

›Example 4

In Vitro Dose Response

For in vitro dose response experiments, cells expressing GNAQ were utilized. Some exemplary cell lines expressing GNAQ include, but are not limited to, human melanoma cell lines OMM1.3 and Mel 202 and MEL-285.

The dsRNAs were screened for in vitro inhibition of the target gene at 1 nM, 0.1 nM, 0.01 nM, and 0.001 nM. Tissue culture cells were transfected with the dsRNA. Target gene mRNA levels were assayed using qPCR (real time PCR).

Cell Culture and Transfection

For knockdown, OMM-1.3, MEL-202 and MEL-285 were grown to near confluence at 37° C. in an atmosphere of 5% CO 2 in RPMI (Invitrogen) supplemented with 10% FBS, streptomycin, and glutamine (ATCC) before being released from the plate by trypsinization. Reverse transfection was carried out by adding 5 μl of Opti-MEM to 5 μl of siRNA duplexes per well into a 96-well plate along with 10 μl of Opti-MEM plus 0.2 μl of Lipofectamine RNAiMax per well (Invitrogen, Carlsbad Calif. cat #13778-150) and incubated at room temperature for 15 minutes. 80 μl of complete growth media without antibiotic containing 2.0×10 4 OMM-1.3, MEL-202 or MEL-285 cells were then added. Cells were incubated for 24 hours prior to RNA purification. Experiments were performed at 1, 0.1, 0.01 and 0.001 nM final duplex concentration.

Total RNA Isolation Using MagMAX-96 Total RNA Isolation Kit (Applied Biosystem, Foster City Calif., Part #: AM1830):

Cells were harvested and lysed in 140 μl of Lysis/Binding Solution then mixed for 1 minute at 850 rpm using and Eppendorf Thermomixer (the mixing speed was the same throughout the process). Twenty micro liters of magnetic beads and Lysis/Binding Enhancer mixture were added into cell-lysate and mixed for 5 minutes. Magnetic beads were captured using magnetic stand and the supernatant was removed without disturbing the beads. After removing supernatant, magnetic beads were washed with Wash Solution 1 (isopropanol added) and mixed for 1 minute. Beads were capture again and supernatant removed. Beads were then washed with 150 μl Wash Solution 2 (Ethanol added), captured and supernatant was removed. 50 μl of DNase mixture (MagMax turbo DNase Buffer and Turbo DNase) was then added to the beads and they were mixed for 10 to 15 minutes. After mixing, 100 μl of RNA Rebinding Solution was added and mixed for 3 minutes. Supernatant was removed and magnetic beads were washed again with 150 μl Wash Solution 2 and mixed for 1 minute and supernatant was removed completely. The magnetic beads were mixed for 2 minutes to dry before RNA was eluted with 50 μl of water.

cDNA Synthesis Using ABI High Capacity cDNA Reverse Transcription Kit (Applied Biosystems, Foster City, Calif., Cat #4368813):

A master mix of 2 μl 10× Buffer, 0.8 μl 25×dNTPs, 2 μl Random primers, 1 μl Reverse Transcriptase, 1 μl RNase inhibitor and 3.2 μl of H 2 O per reaction were added into 10 μl total RNA. cDNA was generated using a Bio-Rad C-1000 or S-1000 thermal cycler (Hercules, Calif.) through the following steps: 25° C. 10 min, 37° C. 120 min, 85° C. 5 sec, 4° C. hold.

Real Time PCR:

2 μl of cDNA were added to a master mix containing 0.5 μl GAPDH TaqMan Probe (Applied Biosystems Cat #4326317E), 0.5 μl GNAQ TaqMan probe (Applied Biosystems cat # Hs00387073_m1) and *Roche Probes Master Mix (Roche Cat #04887301001) per well in a LightCycler 480 384 well plate (Roche cat #0472974001). Real time PCR was done in a LightCycler 480 Real Time PCR machine (Roche). Each duplex was tested in two independent transfections and each transfections was assayed in duplicate.

Real time data were analyzed using the ΔΔCt method. Each sample was normalized to GAPDH expression and knockdown was assessed relative to cells transfected with the non-targeting duplex AD-1955.

The data are presented in Table 18a. Data are expressed as the fraction of message remaining relative to cells targeted with AD-1955. The calculated IC 50 s are presented in Table 18b.

›Example 5

Immunostimulatory Assays: Screening siRNA Sequences for Immunostimulatory Ability

Twelve siRNA candidates were tested for induction of cytokines associated with immunostimulation (TNF-alpha and IFN-alpha).

Human PBMC were isolated from whole blood from healthy donors (Research Blood Components, Inc., Boston, Mass.) by a standard Ficoll-Hypaque density gradient centrifugation technique. PBMC (1×10 5 /well/100 μL) were seeded in 96-well flat bottom plates and cultured in RPMI 1640 GlutaMax-1 medium (Invitrogen) supplemented with 10% heat-inactivated fetal bovine serum (Omega Scientific) and 1% antibiotic/antimycotic (Invitrogen).

GNAC siRNAs was transfected into PBMC using N-[1-(2, 3-Dioleoyloxy)propyl]-N,N,N-trimethylammonium methylsulfate (DOTAP; Roche). The DOTAP was first diluted in Opti-MEM Reduced Serum medium (Invitrogen) for 5 minutes before mixing with an equal volume of Opti-MEM containing the siRNA. siRNA/DOTAP complexes were incubated for 10-15 minutes at room temperature and subsequently added to PBMC (50 μL/well) which were then cultured at 37° C. 5% CO 2 . siRNAs were used at a final concentration of 133 nM. The ratio of RNA to transfection reagent was 16.5 pmoles per μL of DOTAP. Transfections were conducted in quadruplicate in all experiments and were performed within two hours of cell plating. Culture supernatants were collected after 20-24 h and assayed for IFN-α and TNF-α by ELISA.

Cytokines were detected and quantified in culture supernatants with a commercially available ELISA kit for IFN-α (BMS216INST) and TNF-α (BMS223INST) from Bender MedSystems (Vienna, Austria).

Results

The data in Table 19 are presented as a percentage to a AD-5048 stimulated cytokine response. AD-5048 (positive control) corresponds to a sequence that targets human Apolipoprotein B (Soutschek et al., 2004) and elicits both an IFN-α and TNF-α. FIG. 1 and FIG. 2 shows the cytokine induction following transfection with siRNAs.

None of the siRNAs tested demonstrated significant expression of IFN-α and TNF-α in Human PBMCs compared to AD-5048. In particular, AD-20051 and AD-20057 were found to be non immunostimulatory in HuPBMC assay.

›Example 6

In Vitro Cell Viability

A set of dsRNAs were screened for effects on in vitro cell viability. Tissue culture cells were transfected with the dsRNA and viability was assayed by staining with CellTiterBLue and microscopic evaluation.

Cell Culture and Transfection

For viability, OMM-1.3, MEL-202 and MEL-285 cells were grown to near confluence at 37° C. in an atmosphere of 5% CO 2 in RPMI, (Invitrogen) supplemented with 10% FBS, Penn/streptomycin, and glutamine (ATCC) before being released from the plate by trypsinization. Reverse transfection was carried out by adding 5 μl of Opti-MEM to 5 μl of siRNA duplexes per well into a 96-well plate along with 10 μl of Opti-MEM plus 0.2 μl of Lipofectamine RNAiMax per well (Invitrogen, Carlsbad Calif. cat #13778-150) and incubated at room temperature for 15 minutes. 80 μl of complete growth media without antibiotic containing 1.0×10 3 OMM-1.3, MEL-202 or MEL-285 cells were then added. Cells were incubated for 3, 5 or 7 days prior to viability assays. Experiments were performed at 1, 0.1, 0.01 and 0.001 nM final duplex concentration. All transfections were done in triplicate. The siRNAs PLK, and AD-19200 were included as positive controls (result in loss of viability) and AD-1955 was included as a negative control and was used for data normalization.

Cell Viability Assay

For viability assays, 20 μl of CellTiterBlue (Promega, Cat# G8080) was added and mixed into each well of the culture plate 3, 5 or 7 days after transfection with an siRNAs at 1, 0.1, 0.01 or 0.001 nM final concentration. The plates, containing transfected, cultured cells, media and CellTiterBlue were incubated for 1.5 hours and then read on a SpectraMax M5 plate reader (Molecular Devices) at 560 nm (excitation) and 590 nm (emission).

To measure viability, three replicate wells were averaged and subtracted from background (wells containing media and CellTiterBlue, but no cells). Viability is expressed as a normalized value in which cells transfected with GNAQ specific siRNAs or other controls are compared to cells transfected with AD-1955, a non-targeting duplex, cultured under the same conditions.

Results

The results are shown in Table 20. Graphical summaries of the results comparing viability at 3, 5, and 7 days in a single cell line after treatment with each of the duplexes at a single concentration are shown in FIG. 3 , FIG. 4 , FIG. 5 , and FIG. 6 .

The results show decreased cell viability in vitro following GNAQ knockdown that was specific for GNAQ mutant cell lines (e.g., OMM1.3, MEL202), but not GNAQ wild-type (e.g., MEL285) cell lines. In particular these results were shown for duplexes AD-20057, AD-20051, AD-20069, and AD-20093 as illustrated by the graphs in FIG. 7 and FIG. 8 .

›Example 7

In Vivo Efficacy Studies

The dsRNAs are screened for in vivo inhibition of the target gene in mice. Mice are injected with varying amounts of the dsRNA. Target gene protein levels are assayed using, e.g., mouse plasma and an ELISA with a target gene specific antibody. Target gene mRNA levels are assayed using, e.g., mouse liver and branched DNA assays. The lead candidates are dsRNA that reduce levels of the target gene protein and/or mRNA in a dose-dependent manner.

Regimen for Treatment of Mice with dsRNA

A single-dose IV bolus efficacy study is designed for each dsRNA to be tested: dose level, dosing days, formulation, and number of animals. Mice are intravenously (i.v.) administered target gene specific dsRNA, control dsRNA) or PBS systemically and/or subcutaneously in a range of concentrations, e.g., 1.0 mg/kg, 3.0 mg/kg, or 6.0 mg/kg.

Mice are observed for forty-hours then anesthetized with 200 μl of ketamine, and are exsanguinated by severing the right caudal artery. Whole blood is isolated and placed into EDTA plasma separator tubes and centrifuged at 3000 rpm for 10 minutes. Plasma is isolated and stored at 80° C. until assaying. Liver tissue is collected, flash-frozen and stored at −80° C. until processing.

Efficacy of treatment is evaluated by methods including (i) measurement of protein in plasma at prebleed and at 48 hours post-dose, (ii) measurement of mRNA in liver at 48 hours post-dose, and (iii) efficacy in modulation of target gene specific phenotype, e.g., anti-tumor activity.

Assay of Target Gene Protein in Mouse Plasma

Target plasma levels are assayed by ELISA utilizing the commercially available anti GNAQ antibodies, for example G alpha q (K-17) or G alpha q (E-17) (Santa Cruz Biotechnology Inc. Santa Cruz, Calif., USA, cat# SC-26791 and cat # SC-393), according to manufacturer's guidelines.

Assay of Target Gene mRNA Levels in Mouse Liver

Target gene mRNA levels are assayed utilizing the Branched DNA assays Quantigene 2.0 (Panomics cat #: QS0011). Briefly, mouse liver samples are ground and tissue lysates are prepared. Liver lysis Mixture (a mixture of 1 volume of lysis mixture, 2 volume of nuclease-free water and 10 ul of Proteinase-K/ml for a final concentration of 20 mg/ml.) is incubated at 65° C. for 35 minutes. 20 μl of Working Probe Set (target probe for detection of target gene and GAPDH probe for endogenous control) and 80 ul of tissue-lysate are then added into the Capture Plate. Capture Plates are incubated at 55° C.±1° C. (aprx. 16-20 hrs). The next day, the Capture Plate are washed 3 times with 1× Wash Buffer (nuclease-free water, Buffer Component 1 and Wash Buffer Component 2), then dried by centrifuging for 1 minute at 240 g. 100 ul of pre-Amplifer Working Reagent is added into the Capture Plate, which is sealed with aluminum foil and incubated for 1 hour at 55° C.±1° C. Following 1 hour incubation, the wash step is repeated, then 100 μl of Amplifier Working Reagent is added. After 1 hour, the wash and dry steps are repeated, and 100 μl of Label Probe is added. Capture plates are incubated 50° C.±1° C. for 1 hour. The plate is then washed with 1× Wash Buffer, dried and 100 μl Substrate is added into the Capture Plate. Capture Plates are read using the SpectraMax Luminometer following a 5 to 15 minute incubation. bDNA data are analyzed by subtracting the average background from each triplicate sample, averaging the triplicate GAPDH (control probe) and target gene probe (experimental probe) then taking the ratio: (experimental probe-background)/(control probe-background).

GNAQ Materials and Methods

The GNAQ specific dsRNA are formulated in lipid particles (SNALP) as describe herein and administered systemically or subcutaneously to mice with GNAQ-mutant human uveal melanoma cell tumors implanted in the liver to assess in vivo target knockdown and antitumor activity. The dsRNA duplexes with positive results are selected for further studies to develop a Phase I/II trial in patients with GNAQ-mutant uveal melanoma metastatic to liver.

›Example 8

Inhibition of GNAQ in Humans

A human subject is treated with a dsRNA targeted to a GNAQ gene to inhibit expression of the GNAQ gene to treat a condition.

A subject in need of treatment is selected or identified. The subject can have uveal melanoma, cutaneous melanoma, Blue nevi, Nevi of Ota, a neuroendocrine tumor, or a small lung tumor.

The identification of the subject can occur in a clinical setting, or elsewhere, e.g., in the subject's home through the subject's own use of a self-testing kit.

At time zero, a suitable first dose of an anti-GNAQ siRNA is administered to the subject. The dsRNA is formulated as described herein. After a period of time following the first dose, e.g., 7 days, 14 days, and 21 days, the subject's condition is evaluated, e.g., by measuring tumor growth. This measurement can be accompanied by a measurement of GNAQ expression in said subject, and/or the products of the successful siRNA-targeting of GNAQ mRNA. Other relevant criteria can also be measured. The number and strength of doses are adjusted according to the subject's needs.

After treatment, the subject's tumor growth rate is lowered relative to the rate existing prior to the treatment, or relative to the rate measured in a similarly afflicted but untreated subject.

›Example 9

GNAQ mRNA Sequences

›Tables in the description — 32
TABLE 1 — Abbreviations of nucleoside monomers used in nucleic acid sequence representation. It will be understood that these monomers, when present in an oligonucleotide, are mutually linked by 5′-3′-phosphodiester bonds.
AbbreviationNucleoside(s)
Aadenosine
Ccytidine
Gguanosine
Uuridine
Nany nucleotide (G, A, C, U, or dT)
a2′-O-methyladenosine
c2′-O-methylcytidine
g2′-O-methylguanosine
u2′-O-methyluridine
dT2′-deoxythymidine
sa phosphorothioate linkage
SpeciesGNAQ sequence ref
humanNM_002072.2
ratNM_031036.1
monkeyAB170509.1
mouseNM_008139.5
TABLE 2A — GNAQ (human X monkey): target sequences Numbering for target sequences is based on Human GNAQ NM_002072.
Start ofSEQSEQ
targetIDTarget sequence, senseIDTarget sequence, antisense
sequenceNO.strand (5′-3′)NO.strand (5′-3′)
12171CUAAUUUAUUGCCGUCCUG74CAGGACGGCAAUAAAUUAG
12132AAUACUAAUUUAUUGCCGU75ACGGCAAUAAAUUAGUAUU
18103CAGCCAUAGCUUGAUUGCU76AGCAAUCAAGCUAUGGCUG
15904GUCAGGACACAUCGUUCGA77UCGAACGAUGUGUCCUGAC
11495CUUCCCUGGUGGGCUAUUG78CAAUAGCCCACCAGGGAAG
19716GACACUACAUUACCCUAAU79AUUAGGGUAAUGUAGUGUC
12377ACUCUGUGUGAGCGUGUCC80GGACACGCUCACACAGAGU
11528CCCUGGUGGGCUAUUGAAG81CUUCAAUAGCCCACCAGGG
12169ACUAAUUUAUUGCCGUCCU82AGGACGGCAAUAAAUUAGU
157510CUCUCAAAUGAUACAGUCA83UGACUGUAUCAUUUGAGAG
110511AGUACAAUCUGGUCUAAUU84AAUUAGACCAGAUUGUACU
140712CACAAAGAUAAGACUUGUU85AACAAGUCUUAUCUUUGUG
110813ACAAUCUGGUCUAAUUGUG86CACAAUUAGACCAGAUUGU
139514CAGUCAUGCACUCACAAAG87CUUUGUGAGUGCAUGACUG
159515GACACAUCGUUCGAUUUAA88UUAAAUCGAACGAUGUGUC
199216CUGCUACCCAGAACCUUUU89AAAAGGUUCUGGGUAGCAG
180917UCAGCCAUAGCUUGAUUGC90GCAAUCAAGCUAUGGCUGA
122018AUUUAUUGCCGUCCUGGAC91GUCCAGGACGGCAAUAAAU
120319CAAUUUGCAUAAUACUAAU92AUUAGUAUUAUGCAAAUUG
132220GUACAGUCCCAGCACAUUU93AAAUGUGCUGGGACUGUAC
180421UACCUUCAGCCAUAGCUUG94CAAGCUAUGGCUGAAGGUA
196822ACAGACACUACAUUACCCU95AGGGUAAUGUAGUGUCUGU
121423AUACUAAUUUAUUGCCGUC96GACGGCAAUAAAUUAGUAU
115924GGGCUAUUGAAGAUACACA97UGUGUAUCUUCAAUAGCCC
160325GUUCGAUUUAAGCCAUCAU98AUGAUGGCUUAAAUCGAAC
112326UGUGCCUCCUAGACACCCG99CGGGUGUCUAGGAGGCACA
123327CUGGACUCUGUGUGAGCGU100ACGCUCACACAGAGUCCAG
193028ACCCUCUCUUUCAAUUGCA101UGCAAUUGAAAGAGAGGGU
196929CAGACACUACAUUACCCUA102UAGGGUAAUGUAGUGUCUG
121930AAUUUAUUGCCGUCCUGGA103UCCAGGACGGCAAUAAAUU
124131UGUGUGAGCGUGUCCACAG104CUGUGGACACGCUCACACA
115332CCUGGUGGGCUAUUGAAGA105UCUUCAAUAGCCCACCAGG
180533ACCUUCAGCCAUAGCUUGA106UCAAGCUAUGGCUGAAGGU
131234GGAUGCUGAAGUACAGUCC107GGACUGUACUUCAGCAUCC
154635AUCCUAGUUCCAUUCUUGG108CCAAGAAUGGAACUAGGAU
154736UCCUAGUUCCAUUCUUGGU109ACCAAGAAUGGAACUAGGA
110337GGAGUACAAUCUGGUCUAA110UUAGACCAGAUUGUACUCC
133438CACAUUUCCUCUCUAUCUU111AAGAUAGAGAGGAAAUGUG
125539CACAGAGUUUGUAGUAAAU112AUUUACUACAAACUCUGUG
196740AACAGACACUACAUUACCC113GGGUAAUGUAGUGUCUGUU
139141UUCUCAGUCAUGCACUCAC114GUGAGUGCAUGACUGAGAA
112442GUGCCUCCUAGACACCCGC115GCGGGUGUCUAGGAGGCAC
161243AAGCCAUCAUCAGCUUAAU116AUUAAGCUGAUGAUGGCUU
193344CUCUCUUUCAAUUGCAGAU117AUCUGCAAUUGAAAGAGAG
107845ACACCAUCCUCCAGUUGAA118UUCAACUGGAGGAUGGUGU
154546UAUCCUAGUUCCAUUCUUG119CAAGAAUGGAACUAGGAUA
110947CAAUCUGGUCUAAUUGUGC120GCACAAUUAGACCAGAUUG
139848UCAUGCACUCACAAAGAUA121UAUCUUUGUGAGUGCAUGA
197049AGACACUACAUUACCCUAA122UUAGGGUAAUGUAGUGUCU
117350ACACAAGAGGGACUGUAUU123AAUACAGUCCCUCUUGUGU
131351GAUGCUGAAGUACAGUCCC124GGGACUGUACUUCAGCAUC
181152AGCCAUAGCUUGAUUGCUC125GAGCAAUCAAGCUAUGGCU
186253CACAGGAGUCCUUUCUUUU126AAAAGAAAGGACUCCUGUG
160054AUCGUUCGAUUUAAGCCAU127AUGGCUUAAAUCGAACGAU
161855UCAUCAGCUUAAUUUAAGU128ACUUAAAUUAAGCUGAUGA
133256AGCACAUUUCCUCUCUAUC129GAUAGAGAGGAAAUGUGCU
115757GUGGGCUAUUGAAGAUACA130UGUAUCUUCAAUAGCCCAC
88858AUCAUGUAUUCCCAUCUAG131CUAGAUGGGAAUACAUGAU
185559AAAGACACACAGGAGUCCU132AGGACUCCUGUGUGUCUUU
157960CAAAUGAUACAGUCAGGAC133GUCCUGACUGUAUCAUUUG
80561UUAGAACAAUUAUCACAUA134UAUGUGAUAAUUGUUCUAA
155462UCCAUUCUUGGUCAAGUUU135AAACUUGACCAAGAAUGGA
111363CUGGUCUAAUUGUGCCUCC136GGAGGCACAAUUAGACCAG
117464CACAAGAGGGACUGUAUUU137AAAUACAGUCCCUCUUGUG
173565UCUUGUCUCACUUUGGACU138AGUCCAAAGUGAGACAAGA
145066UUUUCUAUGGAGCAAAACA139UGUUUUGCUCCAUAGAAAA
128567AUUUAAACUAUUCAGAGGA140UCCUCUGAAUAGUUUAAAU
80468UUUAGAACAAUUAUCACAU141AUGUGAUAAUUGUUCUAAA
186669GGAGUCCUUUCUUUUGAAA142UUUCAAAAGAAAGGACUCC
161070UUAAGCCAUCAUCAGCUUA143UAAGCUGAUGAUGGCUUAA
111771UCUAAUUGUGCCUCCUAGA144UCUAGGAGGCACAAUUAGA
132072AAGUACAGUCCCAGCACAU145AUGUGCUGGGACUGUACUU
131773CUGAAGUACAGUCCCAGCA146UGCUGGGACUGUACUUCAG
TABLE 2B — GNAQ (human and monkey): sense? and antisense sequences with 2 base overhangs; Numbering for target sequences is based on Human GNAQ NM_002072.
SEQStart of
IDtarget
NOSEQUENCE (5′-3′)Strandsequence
147CUAAUUUAUUGCCGUCCUGNNsense1217
148CAGGACGGCAAUAAAUUAGNNantis1217
149AAUACUAAUUUAUUGCCGUNNsense1213
150ACGGCAAUAAAUUAGUAUUNNantis1213
151CAGCCAUAGCUUGAUUGCUNNsense1810
152AGCAAUCAAGCUAUGGCUGNNantis1810
153GUCAGGACACAUCGUUCGANNsense1590
154UCGAACGAUGUGUCCUGACNNantis1590
155CUUCCCUGGUGGGCUAUUGNNsense1149
156CAAUAGCCCACCAGGGAAGNNantis1149
157GACACUACAUUACCCUAAUNNsense1971
158AUUAGGGUAAUGUAGUGUCNNantis1971
159ACUCUGUGUGAGCGUGUCCNNsense1237
160GGACACGCUCACACAGAGUNNantis1237
161CCCUGGUGGGCUAUUGAAGNNsense1152
162CUUCAAUAGCCCACCAGGGNNantis1152
163ACUAAUUUAUUGCCGUCCUNNsense1216
164AGGACGGCAAUAAAUUAGUNNantis1216
165CUCUCAAAUGAUACAGUCANNsense1575
166UGACUGUAUCAUUUGAGAGNNantis1575
167AGUACAAUCUGGUCUAAUUNNsense1105
168AAUUAGACCAGAUUGUACUNNantis1105
169CACAAAGAUAAGACUUGUUNNsense1407
170AACAAGUCUUAUCUUUGUGNNantis1407
171ACAAUCUGGUCUAAUUGUGNNsense1108
172CACAAUUAGACCAGAUUGUNNantis1108
173CAGUCAUGCACUCACAAAGNNsense1395
174CUUUGUGAGUGCAUGACUGNNantis1395
175GACACAUCGUUCGAUUUAANNsense1595
176UUAAAUCGAACGAUGUGUCNNantis1595
177CUGCUACCCAGAACCUUUUNNsense1992
178AAAAGGUUCUGGGUAGCAGNNantis1992
179UCAGCCAUAGCUUGAUUGCNNsense1809
180GCAAUCAAGCUAUGGCUGANNantis1809
181AUUUAUUGCCGUCCUGGACNNsense1220
182GUCCAGGACGGCAAUAAAUNNantis1220
183CAAUUUGCAUAAUACUAAUNNsense1203
184AUUAGUAUUAUGCAAAUUGNNantis1203
185GUACAGUCCCAGCACAUUUNNsense1322
186AAAUGUGCUGGGACUGUACNNantis1322
187UACCUUCAGCCAUAGCUUGNNsense1804
188CAAGCUAUGGCUGAAGGUANNantis1804
189ACAGACACUACAUUACCCUNNsense1968
190AGGGUAAUGUAGUGUCUGUNNantis1968
191AUACUAAUUUAUUGCCGUCNNsense1214
192GACGGCAAUAAAUUAGUAUNNantis1214
193GGGCUAUUGAAGAUACACANNsense1159
194UGUGUAUCUUCAAUAGCCCNNantis1159
195GUUCGAUUUAAGCCAUCAUNNsense1603
196AUGAUGGCUUAAAUCGAACNNantis1603
197UGUGCCUCCUAGACACCCGNNsense1123
198CGGGUGUCUAGGAGGCACANNantis1123
199CUGGACUCUGUGUGAGCGUNNsense1233
200ACGCUCACACAGAGUCCAGNNantis1233
201ACCCUCUCUUUCAAUUGCANNsense1930
202UGCAAUUGAAAGAGAGGGUNNantis1930
203CAGACACUACAUUACCCUANNsense1969
204UAGGGUAAUGUAGUGUCUGNNantis1969
205AAUUUAUUGCCGUCCUGGANNsense1219
206UCCAGGACGGCAAUAAAUUNNantis1219
207UGUGUGAGCGUGUCCACAGNNsense1241
208CUGUGGACACGCUCACACANNantis1241
209CCUGGUGGGCUAUUGAAGANNsense1153
210UCUUCAAUAGCCCACCAGGNNantis1153
211ACCUUCAGCCAUAGCUUGANNsense1805
212UCAAGCUAUGGCUGAAGGUNNantis1805
213GGAUGCUGAAGUACAGUCCNNsense1312
214GGACUGUACUUCAGCAUCCNNantis1312
215AUCCUAGUUCCAUUCUUGGNNsense1546
216CCAAGAAUGGAACUAGGAUNNantis1546
217UCCUAGUUCCAUUCUUGGUNNsense1547
218ACCAAGAAUGGAACUAGGANNantis1547
219GGAGUACAAUCUGGUCUAANNsense1103
220UUAGACCAGAUUGUACUCCNNantis1103
221CACAUUUCCUCUCUAUCUUNNsense1334
222AAGAUAGAGAGGAAAUGUGNNantis1334
223CACAGAGUUUGUAGUAAAUNNsense1255
224AUUUACUACAAACUCUGUGNNantis1255
225AACAGACACUACAUUACCCNNsense1967
226GGGUAAUGUAGUGUCUGUUNNantis1967
227UUCUCAGUCAUGCACUCACNNsense1391
228GUGAGUGCAUGACUGAGAANNantis1391
229GUGCCUCCUAGACACCCGCNNsense1124
230GCGGGUGUCUAGGAGGCACNNantis1124
231AAGCCAUCAUCAGCUUAAUNNsense1612
232AUUAAGCUGAUGAUGGCUUNNantis1612
233CUCUCUUUCAAUUGCAGAUNNsense1933
234AUCUGCAAUUGAAAGAGAGNNantis1933
235ACACCAUCCUCCAGUUGAANNsense1078
236UUCAACUGGAGGAUGGUGUNNantis1078
237UAUCCUAGUUCCAUUCUUGNNsense1545
238CAAGAAUGGAACUAGGAUANNantis1545
239CAAUCUGGUCUAAUUGUGCNNsense1109
240GCACAAUUAGACCAGAUUGNNantis1109
241UCAUGCACUCACAAAGAUANNsense1398
242UAUCUUUGUGAGUGCAUGANNantis1398
243AGACACUACAUUACCCUAANNsense1970
244UUAGGGUAAUGUAGUGUCUNNantis1970
245ACACAAGAGGGACUGUAUUNNsense1173
246AAUACAGUCCCUCUUGUGUNNantis1173
247GAUGCUGAAGUACAGUCCCNNsense1313
248GGGACUGUACUUCAGCAUCNNantis1313
249AGCCAUAGCUUGAUUGCUCNNsense1811
250GAGCAAUCAAGCUAUGGCUNNantis1811
251CACAGGAGUCCUUUCUUUUNNsense1862
252AAAAGAAAGGACUCCUGUGNNantis1862
253AUCGUUCGAUUUAAGCCAUNNsense1600
254AUGGCUUAAAUCGAACGAUNNantis1600
255UCAUCAGCUUAAUUUAAGUNNsense1618
256ACUUAAAUUAAGCUGAUGANNantis1618
257AGCACAUUUCCUCUCUAUCNNsense1332
258GAUAGAGAGGAAAUGUGCUNNantis1332
259GUGGGCUAUUGAAGAUACANNsense1157
260UGUAUCUUCAAUAGCCCACNNantis1157
261AUCAUGUAUUCCCAUCUAGNNsense888
262CUAGAUGGGAAUACAUGAUNNantis888
263AAAGACACACAGGAGUCCUNNsense1855
264AGGACUCCUGUGUGUCUUUNNantis1855
265CAAAUGAUACAGUCAGGACNNsense1579
266GUCCUGACUGUAUCAUUUGNNantis1579
267UUAGAACAAUUAUCACAUANNsense805
268UAUGUGAUAAUUGUUCUAANNantis805
269UCCAUUCUUGGUCAAGUUUNNsense1554
270AAACUUGACCAAGAAUGGANNantis1554
271CUGGUCUAAUUGUGCCUCCNNsense1113
272GGAGGCACAAUUAGACCAGNNantis1113
273CACAAGAGGGACUGUAUUUNNsense1174
274AAAUACAGUCCCUCUUGUGNNantis1174
275UCUUGUCUCACUUUGGACUNNsense1735
276AGUCCAAAGUGAGACAAGANNantis1735
277UUUUCUAUGGAGCAAAACANNsense1450
278UGUUUUGCUCCAUAGAAAANNantis1450
279AUUUAAACUAUUCAGAGGANNsense1285
280UCCUCUGAAUAGUUUAAAUNNantis1285
281UUUAGAACAAUUAUCACAUNNsense804
282AUGUGAUAAUUGUUCUAAANNantis804
283GGAGUCCUUUCUUUUGAAANNsense1866
284UUUCAAAAGAAAGGACUCCNNantis1866
285UUAAGCCAUCAUCAGCUUANNsense1610
286UAAGCUGAUGAUGGCUUAANNantis1610
287UCUAAUUGUGCCUCCUAGANNsense1117
288UCUAGGAGGCACAAUUAGANNantis1117
289AAGUACAGUCCCAGCACAUNNsense1320
290AUGUGCUGGGACUGUACUUNNantis1320
291CUGAAGUACAGUCCCAGCANNsense1317
292UGCUGGGACUGUACUUCAGNNantis1317
TABLE 2C — GNAQ (human and monkey): sense and antisense sequences with dTdT overhangs Numbering for target sequences is based on Human GNAQ NM_002072
SEQStart of
IDtarget
NOSEQUENCE (5′-3′)Strandsequence
293CUAAUUUAUUGCCGUCCUGdTdTsense1217
294CAGGACGGCAAUAAAUUAGdTdTantis1217
295AAUACUAAUUUAUUGCCGUdTdTsense1213
296ACGGCAAUAAAUUAGUAUUdTdTantis1213
297CAGCCAUAGCUUGAUUGCUdTdTsense1810
298AGCAAUCAAGCUAUGGCUGdTdTantis1810
299GUCAGGACACAUCGUUCGAdTdTsense1590
300UCGAACGAUGUGUCCUGACdTdTantis1590
301CUUCCCUGGUGGGCUAUUGdTdTsense1149
302CAAUAGCCCACCAGGGAAGdTdTantis1149
303GACACUACAUUACCCUAAUdTdTsense1971
304AUUAGGGUAAUGUAGUGUCdTdTantis1971
305ACUCUGUGUGAGCGUGUCCdTdTsense1237
306GGACACGCUCACACAGAGUdTdTantis1237
307CCCUGGUGGGCUAUUGAAGdTdTsense1152
308CUUCAAUAGCCCACCAGGGdTdTantis1152
309ACUAAUUUAUUGCCGUCCUdTdTsense1216
310AGGACGGCAAUAAAUUAGUdTdTantis1216
311CUCUCAAAUGAUACAGUCAdTdTsense1575
312UGACUGUAUCAUUUGAGAGdTdTantis1575
313AGUACAAUCUGGUCUAAUUdTdTsense1105
314AAUUAGACCAGAUUGUACUdTdTantis1105
315CACAAAGAUAAGACUUGUUdTdTsense1407
316AACAAGUCUUAUCUUUGUGdTdTantis1407
317ACAAUCUGGUCUAAUUGUGdTdTsense1108
318CACAAUUAGACCAGAUUGUdTdTantis1108
319CAGUCAUGCACUCACAAAGdTdTsense1395
320CUUUGUGAGUGCAUGACUGdTdTantis1395
321GACACAUCGUUCGAUUUAAdTdTsense1595
322UUAAAUCGAACGAUGUGUCdTdTantis1595
323CUGCUACCCAGAACCUUUUdTdTsense1992
324AAAAGGUUCUGGGUAGCAGdTdTantis1992
325UCAGCCAUAGCUUGAUUGCdTdTsense1809
326GCAAUCAAGCUAUGGCUGAdTdTantis1809
327AUUUAUUGCCGUCCUGGACdTdTsense1220
328GUCCAGGACGGCAAUAAAUdTdTantis1220
329CAAUUUGCAUAAUACUAAUdTdTsense1203
330AUUAGUAUUAUGCAAAUUGdTdTantis1203
331GUACAGUCCCAGCACAUUUdTdTsense1322
332AAAUGUGCUGGGACUGUACdTdTantis1322
333UACCUUCAGCCAUAGCUUGdTdTsense1804
334CAAGCUAUGGCUGAAGGUAdTdTantis1804
335ACAGACACUACAUUACCCUdTdTsense1968
336AGGGUAAUGUAGUGUCUGUdTdTantis1968
337AUACUAAUUUAUUGCCGUCdTdTsense1214
338GACGGCAAUAAAUUAGUAUdTdTantis1214
339GGGCUAUUGAAGAUACACAdTdTsense1159
340UGUGUAUCUUCAAUAGCCCdTdTantis1159
341GUUCGAUUUAAGCCAUCAUdTdTsense1603
342AUGAUGGCUUAAAUCGAACdTdTantis1603
343UGUGCCUCCUAGACACCCGdTdTsense1123
344CGGGUGUCUAGGAGGCACAdTdTantis1123
345CUGGACUCUGUGUGAGCGUdTdTsense1233
346ACGCUCACACAGAGUCCAGdTdTantis1233
347ACCCUCUCUUUCAAUUGCAdTdTsense1930
348UGCAAUUGAAAGAGAGGGUdTdTantis1930
349CAGACACUACAUUACCCUAdTdTsense1969
350UAGGGUAAUGUAGUGUCUGdTdTantis1969
351AAUUUAUUGCCGUCCUGGAdTdTsense1219
352UCCAGGACGGCAAUAAAUUdTdTantis1219
353UGUGUGAGCGUGUCCACAGdTdTsense1241
354CUGUGGACACGCUCACACAdTdTantis1241
355CCUGGUGGGCUAUUGAAGAdTdTsense1153
356UCUUCAAUAGCCCACCAGGdTdTantis1153
357ACCUUCAGCCAUAGCUUGAdTdTsense1805
358UCAAGCUAUGGCUGAAGGUdTdTantis1805
359GGAUGCUGAAGUACAGUCCdTdTsense1312
360GGACUGUACUUCAGCAUCCdTdTantis1312
361AUCCUAGUUCCAUUCUUGGdTdTsense1546
362CCAAGAAUGGAACUAGGAUdTdTantis1546
363UCCUAGUUCCAUUCUUGGUdTdTsense1547
364ACCAAGAAUGGAACUAGGAdTdTantis1547
365GGAGUACAAUCUGGUCUAAdTdTsense1103
366UUAGACCAGAUUGUACUCCdTdTantis1103
367CACAUUUCCUCUCUAUCUUdTdTsense1334
368AAGAUAGAGAGGAAAUGUGdTdTantis1334
369CACAGAGUUUGUAGUAAAUdTdTsense1255
370AUUUACUACAAACUCUGUGdTdTantis1255
371AACAGACACUACAUUACCCdTdTsense1967
372GGGUAAUGUAGUGUCUGUUdTdTantis1967
373UUCUCAGUCAUGCACUCACdTdTsense1391
374GUGAGUGCAUGACUGAGAAdTdTantis1391
375GUGCCUCCUAGACACCCGCdTdTsense1124
376GCGGGUGUCUAGGAGGCACdTdTantis1124
377AAGCCAUCAUCAGCUUAAUdTdTsense1612
378AUUAAGCUGAUGAUGGCUUdTdTantis1612
379CUCUCUUUCAAUUGCAGAUdTdTsense1933
380AUCUGCAAUUGAAAGAGAGdTdTantis1933
381ACACCAUCCUCCAGUUGAAdTdTsense1078
382UUCAACUGGAGGAUGGUGUdTdTantis1078
383UAUCCUAGUUCCAUUCUUGdTdTsense1545
384CAAGAAUGGAACUAGGAUAdTdTantis1545
385CAAUCUGGUCUAAUUGUGCdTdTsense1109
386GCACAAUUAGACCAGAUUGdTdTantis1109
387UCAUGCACUCACAAAGAUAdTdTsense1398
388UAUCUUUGUGAGUGCAUGAdTdTantis1398
389AGACACUACAUUACCCUAAdTdTsense1970
390UUAGGGUAAUGUAGUGUCUdTdTantis1970
391ACACAAGAGGGACUGUAUUdTdTsense1173
392AAUACAGUCCCUCUUGUGUdTdTantis1173
393GAUGCUGAAGUACAGUCCCdTdTsense1313
394GGGACUGUACUUCAGCAUCdTdTantis1313
395AGCCAUAGCUUGAUUGCUCdTdTsense1811
396GAGCAAUCAAGCUAUGGCUdTdTantis1811
397CACAGGAGUCCUUUCUUUUdTdTsense1862
398AAAAGAAAGGACUCCUGUGdTdTantis1862
399AUCGUUCGAUUUAAGCCAUdTdTsense1600
400AUGGCUUAAAUCGAACGAUdTdTantis1600
401UCAUCAGCUUAAUUUAAGUdTdTsense1618
402ACUUAAAUUAAGCUGAUGAdTdTantis1618
403AGCACAUUUCCUCUCUAUCdTdTsense1332
404GAUAGAGAGGAAAUGUGCUdTdTantis1332
405GUGGGCUAUUGAAGAUACAdTdTsense1157
406UGUAUCUUCAAUAGCCCACdTdTantis1157
407AUCAUGUAUUCCCAUCUAGdTdTsense888
408CUAGAUGGGAAUACAUGAUdTdTantis888
409AAAGACACACAGGAGUCCUdTdTsense1855
410AGGACUCCUGUGUGUCUUUdTdTantis1855
411CAAAUGAUACAGUCAGGACdTdTsense1579
412GUCCUGACUGUAUCAUUUGdTdTantis1579
413UUAGAACAAUUAUCACAUAdTdTsense805
414UAUGUGAUAAUUGUUCUAAdTdTantis805
415UCCAUUCUUGGUCAAGUUUdTdTsense1554
416AAACUUGACCAAGAAUGGAdTdTantis1554
417CUGGUCUAAUUGUGCCUCCdTdTsense1113
418GGAGGCACAAUUAGACCAGdTdTantis1113
419CACAAGAGGGACUGUAUUUdTdTsense1174
420AAAUACAGUCCCUCUUGUGdTdTantis1174
421UCUUGUCUCACUUUGGACUdTdTsense1735
422AGUCCAAAGUGAGACAAGAdTdTantis1735
423UUUUCUAUGGAGCAAAACAdTdTsense1450
424UGUUUUGCUCCAUAGAAAAdTdTantis1450
425AUUUAAACUAUUCAGAGGAdTdTsense1285
426UCCUCUGAAUAGUUUAAAUdTdTantis1285
427UUUAGAACAAUUAUCACAUdTdTsense804
428AUGUGAUAAUUGUUCUAAAdTdTantis804
429GGAGUCCUUUCUUUUGAAAdTdTsense1866
430UUUCAAAAGAAAGGACUCCdTdTantis1866
431UUAAGCCAUCAUCAGCUUAdTdTsense1610
432UAAGCUGAUGAUGGCUUAAdTdTantis1610
433UCUAAUUGUGCCUCCUAGAdTdTsense1117
434UCUAGGAGGCACAAUUAGAdTdTantis1117
435AAGUACAGUCCCAGCACAUdTdTsense1320
436AUGUGCUGGGACUGUACUUdTdTantis1320
437CUGAAGUACAGUCCCAGCAdTdTsense1317
438UGCUGGGACUGUACUUCAGdTdTantis1317
TABLE 2D — GNAQ (human and monkey): modified sense and anti- sense strands Numbering for target sequences is based on Human GNAQ NM_002072.
Start ofSEQ
targetID
SEQUENCE (5′-3′)StrandsequenceNO:
Modifications: Sense strand - all pyrimidines
(U, C) are 2′OMe; antisense strand - pyrimidines
adjacent to A (UA, CA) are 2′Ome; 3′ end is dTdT
cuAAuuuAuuGccGuccuGdTdTsense1217439
cAGGACGGcAAuAAAUuAGdTdTantis1217440
AAuAcuAAuuuAuuGccGudTdTsense1213441
ACGGcAAuAAAUuAGuAUUdTdTantis1213442
cAGccAuAGcuuGAuuGcudTdTsense1810443
AGcAAUcAAGCuAUGGCUGdTdTantis1810444
GucAGGAcAcAucGuucGAdTdTsense1590445
UCGAACGAUGUGUCCUGACdTdTantis1590446
cuucccuGGuGGGcuAuuGdTdTsense1149447
cAAuAGCCcACcAGGGAAGdTdTantis1149448
GAcAcuAcAuuAcccuAAudTdTsense1971449
AUuAGGGuAAUGuAGUGUCdTdTantis1971450
AcucuGuGuGAGcGuGuccdTdTsense1237451
GGAcACGCUcAcAcAGAGUdTdTantis1237452
cccuGGuGGGcuAuuGAAGdTdTsense1152453
CUUcAAuAGCCcACcAGGGdTdTantis1152454
AcuAAuuuAuuGccGuccudTdTsense1216455
AGGACGGcAAuAAAUuAGUdTdTantis1216456
cucucAAAuGAuAcAGucAdTdTsense1575457
UGACUGuAUcAUUUGAGAGdTdTantis1575458
AGuAcAAucuGGucuAAuudTdTsense1105459
AAUuAGACcAGAUUGuACUdTdTantis1105460
cAcAAAGAuAAGAcuuGuudTdTsense1407461
AAcAAGUCUuAUCUUUGUGdTdTantis1407462
AcAAucuGGucuAAuuGuGdTdTsense1108463
cAcAAUuAGACcAGAUUGUdTdTantis1108464
cAGucAuGcAcucAcAAAGdTdTsense1395465
CUUUGUGAGUGcAUGACUGdTdTantis1395466
GAcAcAucGuucGAuuuAAdTdTsense1595467
UuAAAUCGAACGAUGUGUCdTdTantis1595468
cuGcuAcccAGAAccuuuudTdTsense1992469
AAAAGGUUCUGGGuAGcAGdTdTantis1992470
ucAGccAuAGcuuGAuuGcdTdTsense1809471
GcAAUcAAGCuAUGGCUGAdTdTantis1809472
AuuuAuuGccGuccuGGAcdTdTsense1220473
GUCcAGGACGGcAAuAAAUdTdTantis1220474
cAAuuuGcAuAAuAcuAAudTdTsense1203475
AUuAGuAUuAUGcAAAUUGdTdTantis1203476
GuAcAGucccAGcAcAuuudTdTsense1322477
AAAUGUGCUGGGACUGuACdTdTantis1322478
uAccuucAGccAuAGcuuGdTdTsense1804479
cAAGCuAUGGCUGAAGGuAdTdTantis1804480
AcAGAcAcuAcAuuAcccudTdTsense1968481
AGGGuAAUGuAGUGUCUGUdTdTantis1968482
AuAcuAAuuuAuuGccGucdTdTsense1214483
GACGGcAAuAAAUuAGuAUdTdTantis1214484
GGGcuAuuGAAGAuAcAcAdTdTsense1159485
UGUGuAUCUUcAAuAGCCCdTdTantis1159486
GuucGAuuuAAGccAucAudTdTsense1603487
AUGAUGGCUuAAAUCGAACdTdTantis1603488
uGuGccuccuAGAcAcccGdTdTsense1123489
CGGGUGUCuAGGAGGcAcAdTdTantis1123490
cuGGAcucuGuGuGAGcGudTdTsense1233491
ACGCUcAcAcAGAGUCcAGdTdTantis1233492
AcccucucuuucAAuuGcAdTdTsense1930493
UGcAAUUGAAAGAGAGGGUdTdTantis1930494
cAGAcAcuAcAuuAcccuAdTdTsense1969495
uAGGGuAAUGuAGUGUCUGdTdTantis1969496
AAuuuAuuGccGuccuGGAdTdTsense1219497
UCcAGGACGGcAAuAAAUUdTdTantis1219498
uGuGuGAGcGuGuccAcAGdTdTsense1241499
CUGUGGAcACGCUcAcAcAdTdTantis1241500
ccuGGuGGGcuAuuGAAGAdTdTsense1153501
UCUUcAAuAGCCcACcAGGdTdTantis1153502
AccuucAGccAuAGcuuGAdTdTsense1805503
UcAAGCuAUGGCUGAAGGUdTdTantis1805504
GGAuGcuGAAGuAcAGuccdTdTsense1312505
GGACUGuACUUcAGcAUCCdTdTantis1312506
AuccuAGuuccAuucuuGGdTdTsense1546507
CcAAGAAUGGAACuAGGAUdTdTantis1546508
uccuAGuuccAuucuuGGudTdTsense1547509
ACcAAGAAUGGAACuAGGAdTdTantis1547510
GGAGuAcAAucuGGucuAAdTdTsense1103511
UuAGACcAGAUUGuACUCCdTdTantis1103512
cAcAuuuccucucuAucuudTdTsense1334513
AAGAuAGAGAGGAAAUGUGdTdTantis1334514
cAcAGAGuuuGuAGuAAAudTdTsense1255515
AUUuACuAcAAACUCUGUGdTdTantis1255516
AAcAGAcAcuAcAuuAcccdTdTsense1967517
GGGuAAUGuAGUGUCUGUUdTdTantis1967518
uucucAGucAuGcAcucAcdTdTsense1391519
GUGAGUGcAUGACUGAGAAdTdTantis1391520
GuGccuccuAGAcAcccGcdTdTsense1124521
GCGGGUGUCuAGGAGGcACdTdTantis1124522
AAGccAucAucAGcuuAAudTdTsense1612523
AUuAAGCUGAUGAUGGCUUdTdTantis1612524
cucucuuucAAuuGcAGAudTdTsense1933525
AUCUGcAAUUGAAAGAGAGdTdTantis1933526
AcAccAuccuccAGuuGAAdTdTsense1078527
UUcAACUGGAGGAUGGUGUdTdTantis1078528
uAuccuAGuuccAuucuuGdTdTsense1545529
cAAGAAUGGAACuAGGAuAdTdTantis1545530
cAAucuGGucuAAuuGuGcdTdTsense1109531
GcAcAAUuAGACcAGAUUGdTdTantis1109532
ucAuGcAcucAcAAAGAuAdTdTsense1398533
uAUCUUUGUGAGUGcAUGAdTdTantis1398534
AGAcAcuAcAuuAcccuAAdTdTsense1970535
UuAGGGuAAUGuAGUGUCUdTdTantis1970536
AcAcAAGAGGGAcuGuAuudTdTsense1173537
AAuAcAGUCCCUCUUGUGUdTdTantis1173538
GAuGcuGAAGuAcAGucccdTdTsense1313539
GGGACUGuACUUcAGcAUCdTdTantis1313540
AGccAuAGcuuGAuuGcucdTdTsense1811541
GAGcAAUcAAGCuAUGGCUdTdTantis1811542
cAcAGGAGuccuuucuuuudTdTsense1862543
AAAAGAAAGGACUCCUGUGdTdTantis1862544
AucGuucGAuuuAAGccAudTdTsense1600545
AUGGCUuAAAUCGAACGAUdTdTantis1600546
ucAucAGcuuAAuuuAAGudTdTsense1618547
ACUuAAAUuAAGCUGAUGAdTdTantis1618548
AGcAcAuuuccucucuAucdTdTsense1332549
GAuAGAGAGGAAAUGUGCUdTdTantis1332550
GuGGGcuAuuGAAGAuAcAdTdTsense1157551
UGuAUCUUcAAuAGCCcACdTdTantis1157552
AucAuGuAuucccAucuAGdTdTsense888553
CuAGAUGGGAAuAcAUGAUdTdTantis888554
AAAGAcAcAcAGGAGuccudTdTsense1855555
AGGACUCCUGUGUGUCUUUdTdTantis1855556
cAAAuGAuAcAGucAGGAcdTdTsense1579557
GUCCUGACUGuAUcAUUUGdTdTantis1579558
uuAGAAcAAuuAucAcAuAdTdTsense805559
uAUGUGAuAAUUGUUCuAAdTdTantis805560
uccAuucuuGGucAAGuuudTdTsense1554561
AAACUUGACcAAGAAUGGAdTdTantis1554562
cuGGucuAAuuGuGccuccdTdTsense1113563
GGAGGcAcAAUuAGACcAGdTdTantis1113564
cAcAAGAGGGAcuGuAuuudTdTsense1174565
AAAuAcAGUCCCUCUUGUGdTdTantis1174566
ucuuGucucAcuuuGGAcudTdTsense1735567
AGUCcAAAGUGAGAcAAGAdTdTantis1735568
uuuucuAuGGAGcAAAAcAdTdTsense1450569
UGUUUUGCUCcAuAGAAAAdTdTantis1450570
AuuuAAAcuAuucAGAGGAdTdTsense1285571
UCCUCUGAAuAGUUuAAAUdTdTantis1285572
uuuAGAAcAAuuAucAcAudTdTsense804573
AUGUGAuAAUUGUUCuAAAdTdTantis804574
GGAGuccuuucuuuuGAAAdTdTsense1866575
UUUcAAAAGAAAGGACUCCdTdTantis1866576
uuAAGccAucAucAGcuuAdTdTsense1610577
uAAGCUGAUGAUGGCUuAAdTdTantis1610578
ucuAAuuGuGccuccuAGAdTdTsense1117579
UCuAGGAGGcAcAAUuAGAdTdTantis1117580
AAGuAcAGucccAGcAcAudTdTsense1320581
AUGUGCUGGGACUGuACUUdTdTantis1320582
cuGAAGuAcAGucccAGcAdTdTsense1317583
UGCUGGGACUGuACUUcAGdTdTantis1317584
Modifications :Sense strand - all pyrimidines
(U, C) are 2′OMe; antisense strand - pyrimidines
adjacent to A (UA, CA) are 2′Ome; 3′ end is thio
(dTsdT).
cuAAuuuAuuGccGuccuGdTsdTsense1217585
cAGGACGGcAAuAAAUuAGdTsdTantis1217586
AAuAcuAAuuuAuuGccGudTsdTsense1213587
ACGGcAAuAAAUuAGuAUUdTsdTantis1213588
cAGccAuAGcuuGAuuGcudTsdTsense1810589
AGcAAUcAAGCuAUGGCUGdTsdTantis1810590
GucAGGAcAcAucGuucGAdTsdTsense1590591
UCGAACGAUGUGUCCUGACdTsdTantis1590592
cuucccuGGuGGGcuAuuGdTsdTsense1149593
cAAuAGCCcACcAGGGAAGdTsdTantis1149594
GAcAcuAcAuuAcccuAAudTsdTsense1971595
AUuAGGGuAAUGuAGUGUCdTsdTantis1971596
AcucuGuGuGAGcGuGuccdTsdTsense1237597
GGAcACGCUcAcAcAGAGUdTsdTantis1237598
cccuGGuGGGcuAuuGAAGdTsdTsense1152599
CUUcAAuAGCCcACcAGGGdTsdTantis1152600
AcuAAuuuAuuGccGuccudTsdTsense1216601
AGGACGGcAAuAAAUuAGUdTsdTantis1216602
cucucAAAuGAuAcAGucAdTsdTsense1575603
UGACUGuAUcAUUUGAGAGdTsdTantis1575604
AGuAcAAucuGGucuAAuudTsdTsense1105605
AAUuAGACcAGAUUGuACUdTsdTantis1105606
cAcAAAGAuAAGAcuuGuudTsdTsense1407607
AAcAAGUCUuAUCUUUGUGdTsdTantis1407608
AcAAucuGGucuAAuuGuGdTsdTsense1108609
cAcAAUuAGACcAGAUUGUdTsdTantis1108610
cAGucAuGcAcucAcAAAGdTsdTsense1395611
CUUUGUGAGUGcAUGACUGdTsdTantis1395612
GAcAcAucGuucGAuuuAAdTsdTsense1595613
UuAAAUCGAACGAUGUGUCdTsdTantis1595614
cuGcuAcccAGAAccuuuudTsdTsense1992615
AAAAGGUUCUGGGuAGcAGdTsdTantis1992616
ucAGccAuAGcuuGAuuGcdTsdTsense1809617
GcAAUcAAGCuAUGGCUGAdTsdTantis1809618
AuuuAuuGccGuccuGGAcdTsdTsense1220619
GUCcAGGACGGcAAuAAAUdTsdTantis1220620
cAAuuuGcAuAAuAcuAAudTsdTsense1203621
AUuAGuAUuAUGcAAAUUGdTsdTantis1203622
GuAcAGucccAGcAcAuuudTsdTsense1322623
AAAUGUGCUGGGACUGuACdTsdTantis1322624
uAccuucAGccAuAGcuuGdTsdTsense1804625
cAAGCuAUGGCUGAAGGuAdTsdTantis1804626
AcAGAcAcuAcAuuAcccudTsdTsense1968627
AGGGuAAUGuAGUGUCUGUdTsdTantis1968628
AuAcuAAuuuAuuGccGucdTsdTsense1214629
GACGGcAAuAAAUuAGuAUdTsdTantis1214630
GGGcuAuuGAAGAuAcAcAdTsdTsense1159631
UGUGuAUCUUcAAuAGCCCdTsdTantis1159632
GuucGAuuuAAGccAucAudTsdTsense1603633
AUGAUGGCUuAAAUCGAACdTsdTantis1603634
uGuGccuccuAGAcAcccGdTsdTsense1123635
CGGGUGUCuAGGAGGcAcAdTsdTantis1123636
cuGGAcucuGuGuGAGcGudTsdTsense1233637
ACGCUcAcAcAGAGUCcAGdTsdTantis1233638
AcccucucuuucAAuuGcAdTsdTsense1930639
UGcAAUUGAAAGAGAGGGUdTsdTantis1930640
cAGAcAcuAcAuuAcccuAdTsdTsense1969641
uAGGGuAAUGuAGUGUCUGdTsdTantis1969642
AAuuuAuuGccGuccuGGAdTsdTsense1219643
UCcAGGACGGcAAuAAAUUdTsdTantis1219644
uGuGuGAGcGuGuccAcAGdTsdTsense1241645
CUGUGGAcACGCUcAcAcAdTsdTantis1241646
ccuGGuGGGcuAuuGAAGAdTsdTsense1153647
UCUUcAAuAGCCcACcAGGdTsdTantis1153648
AccuucAGccAuAGcuuGAdTsdTsense1805649
UcAAGCuAUGGCUGAAGGUdTsdTantis1805650
GGAuGcuGAAGuAcAGuccdTsdTsense1312651
GGACUGuACUUcAGcAUCCdTsdTantis1312652
AuccuAGuuccAuucuuGGdTsdTsense1546653
CcAAGAAUGGAACuAGGAUdTsdTantis1546654
uccuAGuuccAuucuuGGudTsdTsense1547655
ACcAAGAAUGGAACuAGGAdTsdTantis1547656
GGAGuAcAAucuGGucuAAdTsdTsense1103657
UuAGACcAGAUUGuACUCCdTsdTantis1103658
cAcAuuuccucucuAucuudTsdTsense1334659
AAGAuAGAGAGGAAAUGUGdTsdTantis1334660
cAcAGAGuuuGuAGuAAAudTsdTsense1255661
AUUuACuAcAAACUCUGUGdTsdTantis1255662
AAcAGAcAcuAcAuuAcccdTsdTsense1967663
GGGuAAUGuAGUGUCUGUUdTsdTantis1967664
uucucAGucAuGcAcucAcdTsdTsense1391665
GUGAGUGcAUGACUGAGAAdTsdTantis1391666
GuGccuccuAGAcAcccGcdTsdTsense1124667
GCGGGUGUCuAGGAGGcACdTsdTantis1124668
AAGccAucAucAGcuuAAudTsdTsense1612669
AUuAAGCUGAUGAUGGCUUdTsdTantis1612670
cucucuuucAAuuGcAGAudTsdTsense1933671
AUCUGcAAUUGAAAGAGAGdTsdTantis1933672
AcAccAuccuccAGuuGAAdTsdTsense1078673
UUcAACUGGAGGAUGGUGUdTsdTantis1078674
uAuccuAGuuccAuucuuGdTsdTsense1545675
cAAGAAUGGAACuAGGAuAdTsdTantis1545676
cAAucuGGucuAAuuGuGcdTsdTsense1109677
GcAcAAUuAGACcAGAUUGdTsdTantis1109678
ucAuGcAcucAcAAAGAuAdTsdTsense1398679
uAUCUUUGUGAGUGcAUGAdTsdTantis1398680
AGAcAcuAcAuuAcccuAAdTsdTsense1970681
UuAGGGuAAUGuAGUGUCUdTsdTantis1970682
AcAcAAGAGGGAcuGuAuudTsdTsense1173683
AAuAcAGUCCCUCUUGUGUdTsdTantis1173684
GAuGcuGAAGuAcAGucccdTsdTsense1313685
GGGACUGuACUUcAGcAUCdTsdTantis1313686
AGccAuAGcuuGAuuGcucdTsdTsense1811687
GAGcAAUcAAGCuAUGGCUdTsdTantis1811688
cAcAGGAGuccuuucuuuudTsdTsense1862689
AAAAGAAAGGACUCCUGUGdTsdTantis1862690
AucGuucGAuuuAAGccAudTsdTsense1600691
AUGGCUuAAAUCGAACGAUdTsdTantis1600692
ucAucAGcuuAAuuuAAGudTsdTsense1618693
ACUuAAAUuAAGCUGAUGAdTsdTantis1618694
AGcAcAuuuccucucuAucdTsdTsense1332695
GAuAGAGAGGAAAUGUGCUdTsdTantis1332696
GuGGGcuAuuGAAGAuAcAdTsdTsense1157697
UGuAUCUUcAAuAGCCcACdTsdTantis1157698
AucAuGuAuucccAucuAGdTsdTsense888699
CuAGAUGGGAAuAcAUGAUdTsdTantis888700
AAAGAcAcAcAGGAGuccudTsdTsense1855701
AGGACUCCUGUGUGUCUUUdTsdTantis1855702
cAAAuGAuAcAGucAGGAcdTsdTsense1579703
GUCCUGACUGuAUcAUUUGdTsdTantis1579704
uuAGAAcAAuuAucAcAuAdTsdTsense805705
uAUGUGAuAAUUGUUCuAAdTsdTantis805706
uccAuucuuGGucAAGuuudTsdTsense1554707
AAACUUGACcAAGAAUGGAdTsdTantis1554708
cuGGucuAAuuGuGccuccdTsdTsense1113709
GGAGGcAcAAUuAGACcAGdTsdTantis1113710
cAcAAGAGGGAcuGuAuuudTsdTsense1174711
AAAuAcAGUCCCUCUUGUGdTsdTantis1174712
ucuuGucucAcuuuGGAcudTsdTsense1735713
AGUCcAAAGUGAGAcAAGAdTsdTantis1735714
uuuucuAuGGAGcAAAAcAdTsdTsense1450715
UGUUUUGCUCcAuAGAAAAdTsdTantis1450716
AuuuAAAcuAuucAGAGGAdTsdTsense1285717
UCCUCUGAAuAGUUuAAAUdTsdTantis1285718
uuuAGAAcAAuuAucAcAudTsdTsense804719
AUGUGAuAAUUGUUCuAAAdTsdTantis804720
GGAGuccuuucuuuuGAAAdTsdTsense1866721
UUUcAAAAGAAAGGACUCCdTsdTantis1866722
uuAAGccAucAucAGcuuAdTsdTsense1610723
uAAGCUGAUGAUGGCUuAAdTsdTantis1610724
ucuAAuuGuGccuccuAGAdTsdTsense1117725
UCuAGGAGGcAcAAUuAGAdTsdTantis1117726
AAGuAcAGucccAGcAcAudTsdTsense1320727
AUGUGCUGGGACUGuACUUdTsdTantis1320728
cuGAAGuAcAGucccAGcAdTsdTsense1317729
UGCUGGGACUGuACUUcAGdTsdTantis1317730
Modifications: Sense strand - all pyrimidines are
2′OMe; antisense strand - pyrimidines adjacent to
A (UA, CA) + U adjacent to another U (UU) or G
(UG) are 2′Ome; 3′ end is thio (dTsdT).
cuAAuuuAuuGccGuccuGdTsdTsense1217731
cAGGACGGcAAuAAAUuAGdTsdTantis1217732
AAuAcuAAuuuAuuGccGudTsdTsense1213733
ACGGcAAuAAAUuAGuAuUdTsdTantis1213734
cAGccAuAGcuuGAuuGcudTsdTsense1810735
AGcAAUcAAGCuAuGGCuGdTsdTantis1810736
GucAGGAcAcAucGuucGAdTsdTsense1590737
UCGAACGAuGuGUCCuGACdTsdTantis1590738
cuucccuGGuGGGcuAuuGdTsdTsense1149739
cAAuAGCCcACcAGGGAAGdTsdTantis1149740
GAcAcuAcAuuAcccuAAudTsdTsense1971741
AUuAGGGuAAuGuAGuGUCdTsdTantis1971742
AcucuGuGuGAGcGuGuccdTsdTsense1237743
GGAcACGCUcAcAcAGAGUdTsdTantis1237744
cccuGGuGGGcuAuuGAAGdTsdTsense1152745
CuUcAAuAGCCcACcAGGGdTsdTantis1152746
AcuAAuuuAuuGccGuccudTsdTsense1216747
AGGACGGcAAuAAAUuAGUdTsdTantis1216748
cucucAAAuGAuAcAGucAdTsdTsense1575749
uGACuGuAUcAuUuGAGAGdTsdTantis1575750
AGuAcAAucuGGucuAAuudTsdTsense1105751
AAUuAGACcAGAuuGuACUdTsdTantis1105752
cAcAAAGAuAAGAcuuGuudTsdTsense1407753
AAcAAGUCUuAUCuUuGuGdTsdTantis1407754
AcAAucuGGucuAAuuGuGdTsdTsense1108755
cAcAAUuAGACcAGAuuGUdTsdTantis1108756
cAGucAuGcAcucAcAAAGdTsdTsense1395757
CuUuGuGAGuGcAuGACuGdTsdTantis1395758
GAcAcAucGuucGAuuuAAdTsdTsense1595759
UuAAAUCGAACGAuGuGUCdTsdTantis1595760
cuGcuAcccAGAAccuuuudTsdTsense1992761
AAAAGGuUCuGGGuAGcAGdTsdTantis1992762
ucAGccAuAGcuuGAuuGcdTsdTsense1809763
GcAAUcAAGCuAuGGCuGAdTsdTantis1809764
AuuuAuuGccGuccuGGAcdTsdTsense1220765
GUCcAGGACGGcAAuAAAUdTsdTantis1220766
cAAuuuGcAuAAuAcuAAudTsdTsense1203767
AUuAGuAUuAuGcAAAuuGdTsdTantis1203768
GuAcAGucccAGcAcAuuudTsdTsense1322769
AAAuGuGCuGGGACuGuACdTsdTantis1322770
uAccuucAGccAuAGcuuGdTsdTsense1804771
cAAGCuAuGGCuGAAGGuAdTsdTantis1804772
AcAGAcAcuAcAuuAcccudTsdTsense1968773
AGGGuAAuGuAGuGUCuGUdTsdTantis1968774
AuAcuAAuuuAuuGccGucdTsdTsense1214775
GACGGcAAuAAAUuAGuAUdTsdTantis1214776
GGGcuAuuGAAGAuAcAcAdTsdTsense1159777
uGuGuAUCuUcAAuAGCCCdTsdTantis1159778
GuucGAuuuAAGccAucAudTsdTsense1603779
AuGAuGGCUuAAAUCGAACdTsdTantis1603780
uGuGccuccuAGAcAcccGdTsdTsense1123781
CGGGuGUCuAGGAGGcAcAdTsdTantis1123782
cuGGAcucuGuGuGAGcGudTsdTsense1233783
ACGCUcAcAcAGAGUCcAGdTsdTantis1233784
AcccucucuuucAAuuGcAdTsdTsense1930785
uGcAAuuGAAAGAGAGGGUdTsdTantis1930786
cAGAcAcuAcAuuAcccuAdTsdTsense1969787
uAGGGuAAuGuAGuGUCuGdTsdTantis1969788
AAuuuAuuGccGuccuGGAdTsdTsense1219789
UCcAGGACGGcAAuAAAuUdTsdTantis1219790
uGuGuGAGcGuGuccAcAGdTsdTsense1241791
CuGuGGAcACGCUcAcAcAdTsdTantis1241792
ccuGGuGGGcuAuuGAAGAdTsdTsense1153793
UCuUcAAuAGCCcACcAGGdTsdTantis1153794
AccuucAGccAuAGcuuGAdTsdTsense1805795
UcAAGCuAuGGCuGAAGGUdTsdTantis1805796
GGAuGcuGAAGuAcAGuccdTsdTsense1312797
GGACuGuACuUcAGcAUCCdTsdTantis1312798
AuccuAGuuccAuucuuGGdTsdTsense1546799
CcAAGAAuGGAACuAGGAUdTsdTantis1546800
uccuAGuuccAuucuuGGudTsdTsense1547801
ACcAAGAAuGGAACuAGGAdTsdTantis1547802
GGAGuAcAAucuGGucuAAdTsdTsense1103803
UuAGACcAGAuuGuACUCCdTsdTantis1103804
cAcAuuuccucucuAucuudTsdTsense1334805
AAGAuAGAGAGGAAAuGuGdTsdTantis1334806
cAcAGAGuuuGuAGuAAAudTsdTsense1255807
AuUuACuAcAAACUCuGuGdTsdTantis1255808
AAcAGAcAcuAcAuuAcccdTsdTsense1967809
GGGuAAuGuAGuGUCuGuUdTsdTantis1967810
uucucAGucAuGcAcucAcdTsdTsense1391811
GuGAGuGcAuGACuGAGAAdTsdTantis1391812
GuGccuccuAGAcAcccGcdTsdTsense1124813
GCGGGuGUCuAGGAGGcACdTsdTantis1124814
AAGccAucAucAGcuuAAudTsdTsense1612815
AUuAAGCuGAuGAuGGCuUdTsdTantis1612816
cucucuuucAAuuGcAGAudTsdTsense1933817
AUCuGcAAuuGAAAGAGAGdTsdTantis1933818
AcAccAuccuccAGuuGAAdTsdTsense1078819
uUcAACuGGAGGAuGGuGUdTsdTantis1078820
uAuccuAGuuccAuucuuGdTsdTsense1545821
cAAGAAuGGAACuAGGAuAdTsdTantis1545822
cAAucuGGucuAAuuGuGcdTsdTsense1109823
GcAcAAUuAGACcAGAuuGdTsdTantis1109824
ucAuGcAcucAcAAAGAuAdTsdTsense1398825
uAUCuUuGuGAGuGcAuGAdTsdTantis1398826
AGAcAcuAcAuuAcccuAAdTsdTsense1970827
UuAGGGuAAuGuAGuGUCUdTsdTantis1970828
AcAcAAGAGGGAcuGuAuudTsdTsense1173829
AAuAcAGUCCCUCuuGuGUdTsdTantis1173830
GAuGcuGAAGuAcAGucccdTsdTsense1313831
GGGACuGuACuUcAGcAUCdTsdTantis1313832
AGccAuAGcuuGAuuGcucdTsdTsense1811833
GAGcAAUcAAGCuAuGGCUdTsdTantis1811834
cAcAGGAGuccuuucuuuudTsdTsense1862835
AAAAGAAAGGACUCCuGuGdTsdTantis1862836
AucGuucGAuuuAAGccAudTsdTsense1600837
AuGGCUuAAAUCGAACGAUdTsdTantis1600838
ucAucAGcuuAAuuuAAGudTsdTsense1618839
ACUuAAAUuAAGCuGAuGAdTsdTantis1618840
AGcAcAuuuccucucuAucdTsdTsense1332841
GAuAGAGAGGAAAuGuGCUdTsdTantis1332842
GuGGGcuAuuGAAGAuAcAdTsdTsense1157843
uGuAUCuUcAAuAGCCcACdTsdTantis1157844
AucAuGuAuucccAucuAGdTsdTsense888845
CuAGAuGGGAAuAcAuGAUdTsdTantis888846
AAAGAcAcAcAGGAGuccudTsdTsense1855847
AGGACUCCuGuGuGUCuUUdTsdTantis1855848
cAAAuGAuAcAGucAGGAcdTsdTsense1579849
GUCCuGACuGuAUcAuUuGdTsdTantis1579850
uuAGAAcAAuuAucAcAuAdTsdTsense805851
uAuGuGAuAAuuGuUCuAAdTsdTantis805852
uccAuucuuGGucAAGuuudTsdTsense1554853
AAACuuGACcAAGAAuGGAdTsdTantis1554854
cuGGucuAAuuGuGccuccdTsdTsense1113855
GGAGGcAcAAUuAGACcAGdTsdTantis1113856
cAcAAGAGGGAcuGuAuuudTsdTsense1174857
AAAuAcAGUCCCUCuuGuGdTsdTantis1174858
ucuuGucucAcuuuGGAcudTsdTsense1735859
AGUCcAAAGuGAGAcAAGAdTsdTantis1735860
uuuucuAuGGAGcAAAAcAdTsdTsense1450861
uGuUuuGCUCcAuAGAAAAdTsdTantis1450862
AuuuAAAcuAuucAGAGGAdTsdTsense1285863
UCCUCuGAAuAGuUuAAAUdTsdTantis1285864
uuuAGAAcAAuuAucAcAudTsdTsense804865
AuGuGAuAAuuGuUCuAAAdTsdTantis804866
GGAGuccuuucuuuuGAAAdTsdTsense1866867
uUUcAAAAGAAAGGACUCCdTsdTantis1866868
uuAAGccAucAucAGcuuAdTsdTsense1610869
uAAGCuGAuGAuGGCUuAAdTsdTantis1610870
ucuAAuuGuGccuccuAGAdTsdTsense1117871
UCuAGGAGGcAcAAUuAGAdTsdTantis1117872
AAGuAcAGucccAGcAcAudTsdTsense1320873
AuGuGCuGGGACuGuACuUdTsdTantis1320874
cuGAAGuAcAGucccAGcAdTsdTsense1317875
uGCuGGGACuGuACuUcAGdTsdTantis1317876
TABLE 3A — GNAQ (Human, monkey and mouse): target sequences Numbering for target sequence is Human GNAQ NM_002072.
StartTargetTarget
ofSEQsequence,SEQsequence,
targetIDsense strandIDantisense
sequenceNO.(5′-3′)NO.strand (5′-3′)
1215877UACUAAUUUAUU888GGACGGCAAUAA
GCCGUCCAUUAGUA
1217878CUAAUUUAUUGC889CAGGACGGCAAU
CGUCCUGAAAUUAG
1216879ACUAAUUUAUUG890AGGACGGCAAUA
CCGUCCUAAUUAGU
1322880GUACAGUCCCAG891AAAUGUGCUGGG
CACAUUUACUGUAC
1220881AUUUAUUGCCGU892GUCCAGGACGGC
CCUGGACAAUAAAU
1265882GUAGUAAAUAUU893AAAUCAUAAUAU
AUGAUUUUUACUAC
1218883UAAUUUAUUGCC894CCAGGACGGCAA
GUCCUGGUAAAUUA
1175884ACAAGAGGGACU895GAAAUACAGUCC
GUAUUUCCUCUUGU
1223885UAUUGCCGUCCU896AGAGUCCAGGAC
GGACUCUGGCAAUA
1319886GAAGUACAGUCC897UGUGCUGGGACU
CAGCACAGUACUUC
1285887AUUUAAACUAUU898UCCUCUGAAUAG
CAGAGGAUUUAAAU
TABLE 3B — GNAQ (Human, monkey and mouse): sense and antisense sequences with 2 base overhangs Numbering for target sequence is Human GNAQ NM_002072.
SEQStart of
IDtarget
NOSEQUENCE (5′-3′)Strandsequence
899UACUAAUUUAUUGCCGUCCNNsense1215
900GGACGGCAAUAAAUUAGUANNantis1215
901CUAAUUUAUUGCCGUCCUGNNsense1217
902CAGGACGGCAAUAAAUUAGNNantis1217
903ACUAAUUUAUUGCCGUCCUNNsense1216
904AGGACGGCAAUAAAUUAGUNNantis1216
905GUACAGUCCCAGCACAUUUNNsense1322
906AAAUGUGCUGGGACUGUACNNantis1322
907AUUUAUUGCCGUCCUGGACNNsense1220
908GUCCAGGACGGCAAUAAAUNNantis1220
909GUAGUAAAUAUUAUGAUUUNNsense1265
910AAAUCAUAAUAUUUACUACNNantis1265
911UAAUUUAUUGCCGUCCUGGNNsense1218
912CCAGGACGGCAAUAAAUUANNantis1218
913ACAAGAGGGACUGUAUUUCNNsense1175
914GAAAUACAGUCCCUCUUGUNNantis1175
915UAUUGCCGUCCUGGACUCUNNsense1223
916AGAGUCCAGGACGGCAAUANNantis1223
917GAAGUACAGUCCCAGCACANNsense1319
918UGUGCUGGGACUGUACUUCNNantis1319
919AUUUAAACUAUUCAGAGGANNsense1285
920UCCUCUGAAUAGUUUAAAUNNantis1285
TABLE 3C — GNAQ (Human, monkey and mouse): sense and antisense sequences with dTdT overhangs Numbering for target sequence is Human GNAQ NM_002072.
SEQStart of
IDtarget
NOSEQUENCE (5′-3′)Strandsequence
921UACUAAUUUAUUGCCGUCCdTdTsense1215
922GGACGGCAAUAAAUUAGUAdTdTantis1215
923CUAAUUUAUUGCCGUCCUGdTdTsense1217
924CAGGACGGCAAUAAAUUAGdTdTantis1217
925ACUAAUUUAUUGCCGUCCUdTdTsense1216
926AGGACGGCAAUAAAUUAGUdTdTantis1216
927GUACAGUCCCAGCACAUUUdTdTsense1322
928AAAUGUGCUGGGACUGUACdTdTantis1322
929AUUUAUUGCCGUCCUGGACdTdTsense1220
930GUCCAGGACGGCAAUAAAUdTdTantis1220
931GUAGUAAAUAUUAUGAUUUdTdTsense1265
932AAAUCAUAAUAUUUACUACdTdTantis1265
933UAAUUUAUUGCCGUCCUGGdTdTsense1218
934CCAGGACGGCAAUAAAUUAdTdTantis1218
935ACAAGAGGGACUGUAUUUCdTdTsense1175
936GAAAUACAGUCCCUCUUGUdTdTantis1175
937UAUUGCCGUCCUGGACUCUdTdTsense1223
938AGAGUCCAGGACGGCAAUAdTdTantis1223
939GAAGUACAGUCCCAGCACAdTdTsense1319
940UGUGCUGGGACUGUACUUCdTdTantis1319
941AUUUAAACUAUUCAGAGGAdTdTsense1285
942UCCUCUGAAUAGUUUAAAUdTdTantis1285
TABLE 3D — GNAQ (Human, monkey and mouse): modified sense and antisense strands Numbering for target sequence is Human GNAQ NM_002072.
Start ofSEQ
targetID
SEQUENCE (5′-3′)StrandsequenceNO
Modifications: Sense strand - all pyrimidines (U, C)are
2′OMe; antisense strand - pyrimidines adjacentto A (UA, CA)
are 2′Ome; 3′ end is dTdT
uAcuAAuuuAuuGccGuccdTdTsense1215943
GGACGGcAAuAAAUuAGuAdTdTantis1215944
cuAAuuuAuuGccGuccuGdTdTsense1217945
cAGGACGGcAAuAAAUuAGdTdTantis1217946
AcuAAuuuAuuGccGuccudTdTsense1216947
AGGACGGcAAuAAAUuAGUdTdTantis1216948
GuAcAGucccAGcAcAuuudTdTsense1322949
AAAUGUGCUGGGACUGuACdTdTantis1322950
AuuuAuuGccGuccuGGAcdTdTsense1220951
GUCcAGGACGGcAAuAAAUdTdTantis1220952
GuAGuAAAuAuuAuGAuuudTdTsense1265953
AAAUcAuAAuAUUuACuACdTdTantis1265954
uAAuuuAuuGccGuccuGGdTdTsense1218955
CcAGGACGGcAAuAAAUuAdTdTantis1218956
AcAAGAGGGAcuGuAuuucdTdTsense1175957
GAAAuAcAGUCCCUCUUGUdTdTantis1175958
uAuuGccGuccuGGAcucudTdTsense1223959
AGAGUCcAGGACGGcAAuAdTdTantis1223960
GAAGuAcAGucccAGcAcAdTdTsense1319961
UGUGCUGGGACUGuACUUCdTdTantis1319962
AuuuAAAcuAuucAGAGGAdTdTsense1285963
UCCUCUGAAuAGUUuAAAUdTdTantis1285964
Modifications: Sense strand - all pyrimidines (U, C)
are 2′OMe; antisense strand - pyrimidines adjacent
to A(UA, CA) are 2′Ome; 3′ end is thio (dTsdT)
uAcuAAuuuAuuGccGuccdTsdTsense1215965
GGACGGcAAuAAAUuAGuAdTsdTantis1215966
cuAAuuuAuuGccGuccuGdTsdTsense1217967
cAGGACGGcAAuAAAUuAGdTsdTantis1217968
AcuAAuuuAuuGccGuccudTsdTsense1216969
AGGACGGcAAuAAAUuAGUdTsdTantis1216970
GuAcAGucccAGcAcAuuudTsdTsense1322971
AAAUGUGCUGGGACUGuACdTsdTantis1322972
AuuuAuuGccGuccuGGAcdTsdTsense1220973
GUCcAGGACGGcAAuAAAUdTsdTantis1220974
GuAGuAAAuAuuAuGAuuudTsdTsense1265975
AAAUcAuAAuAUUuACuACdTsdTantis1265976
uAAuuuAuuGccGuccuGGdTsdTsense1218977
CcAGGACGGcAAuAAAUuAdTsdTantis1218978
AcAAGAGGGAcuGuAuuucdTsdTsense1175979
GAAAuAcAGUCCCUCUUGUdTsdTantis1175980
uAuuGccGuccuGGAcucudTsdTsense1223981
AGAGUCcAGGACGGcAAuAdTsdTantis1223982
GAAGuAcAGucccAGcAcAdTsdTsense1319983
UGUGCUGGGACUGuACUUCdTsdTantis1319984
AuuuAAAcuAuucAGAGGAdTsdTsense1285985
UCCUCUGAAuAGUUuAAAUdTsdTantis1285986
Modifications: Sense strand - all pyrimidines are
2′OMe; antisense strand - pyrimidines adjacent to
A (UA, CA) + U adjacent to another U (UU) or G
(UG) are 2′Ome; 3′ end is thio (dTsdT).
uAcuAAuuuAuuGccGuccdTsdTsense1215987
GGACGGcAAuAAAUuAGuAdTsdTantis1215988
cuAAuuuAuuGccGuccuGdTsdTsense1217989
cAGGACGGcAAuAAAUuAGdTsdTantis1217990
AcuAAuuuAuuGccGuccudTsdTsense1216991
AGGACGGcAAuAAAUuAGUdTsdTantis1216992
GuAcAGucccAGcAcAuuudTsdTsense1322993
AAAuGuGCuGGGACuGuACdTsdTantis1322994
AuuuAuuGccGuccuGGAcdTsdTsense1220995
GUCcAGGACGGcAAuAAAUdTsdTantis1220996
GuAGuAAAuAuuAuGAuuudTsdTsense1265997
AAAUcAuAAuAuUuACuACdTsdTantis1265998
uAAuuuAuuGccGuccuGGdTsdTsense1218999
CcAGGACGGcAAuAAAUuAdTsdTantis12181000
AcAAGAGGGAcuGuAuuucdTsdTsense11751001
GAAAuAcAGUCCCUCuuGUdTsdTantis11751002
uAuuGccGuccuGGAcucudTsdTsense12231003
AGAGUCcAGGACGGcAAuAdTsdTantis12231004
GAAGuAcAGucccAGcAcAdTsdTsense13191005
uGuGCuGGGACuGuACuUCdTsdTantis13191006
AuuuAAAcuAuucAGAGGAdTsdTsense12851007
UCCUCuGAAuAGuUuAAAUdTsdTantis12851008
TABLE 4A — GNAQ (rat and mouse): target sequences Numbering for target sequences is Rat GNAQ NM_031036.
Start ofSEQTarget se-SEQTarget sequence,
targetIDquence, senseIDantisense
sequenceNO.strand (5′-3′)NO.strand (5′-3′)
8531009UAUUCCCACCUAG1039AGUCGACUAGGUG
UCGACUGGAAUA
8551010UUCCCACCUAGUC1040GUAGUCGACUAGG
GACUACUGGGAA
3671011GCUUUUGAGAAUC1041CAUAUGGAUUCUC
CAUAUGAAAAGC
551012CGGAGGAUCAACG1042UCUCGUCGUUGAU
ACGAGACCUCCG
4591013AUCUGACUCUACC1043GUAUUUGGUAGAG
AAAUACUCAGAU
3121014ACACAAUAAGGCU1044UGCAUGAGCCUUA
CAUGCAUUGUGU
1781015AGGAUCAUCCACG1045CCGACCCGUGGAU
GGUCGGGAUCCU
2971016CCCAUACAAGUAU1046GUGUUCAUACUUG
GAACACUAUGGG
3151017CAAUAAGGCUCAU1047UUGUGCAUGAGCC
GCACAAUUAUUG
581018AGGAUCAACGACG1048CGAUCUCGUCGUU
AGAUCGGAUCCU
3241019UCAUGCACAAUUG1049uCGAACCAAUUGU
GUUCGAGCAUGA
591020GGAUCAACGACGA1050UCGAUCUCGUCGU
GAUCGAUGAUCC
3981021AGAGCUUGUGGAA1051GGAUCAUUCCACA
UGAUCCAGCUCU
571022GAGGAUCAACGAC1052GAUCUCGUCGUUG
GAGAUCAUCCUC
561023GGAGGAUCAACGA1053AUCUCGUCGUUGA
CGAGAUUCCUCC
3691024UUUUGAGAAUCCA1054UACAUAUGGAUUC
UAUGUAUCAAAA
451025CAAGGAAGCCCGG1055GAUCCUCCGGGCU
AGGAUCUCCUUG
4601026UCUGACUCUACCA1056AGUAUUUGGUAGA
AAUACUGUCAGA
971027AAGCGCGACGCCC1057CCCGGCGGGCGUC
GCCGGGGCGCUU
3141028ACAAUAAGGCUCA1058UGUGCAUGAGCCU
UGCACAUAUUGU
3181029UAAGGCUCAUGCA1059CAAUUGUGCAUGA
CAAUUGGCCUUA
501030AAGCCCGGAGGAU1060UCGUUGAUCCUCC
CAACGAGGGCUU
3231031CUCAUGCACAAUU1061CGAACCAAUUGUG
GGUUCGCAUGAG
3271032UGCACAAUUGGUU1062CUCUCGAACCAAU
CGAGAGUGUGCA
3291033CACAAUUGGUUCG1063ACCUCUCGAACCA
AGAGGUAUUGUG
8621034CUAGUCGACUACU1064CUGGGAAGUAGUC
UCCCAGGACUAG
891035GCAGGGACAAGCG1065GCGUCGCGCUUGU
CGACGCCCCUGC
3711036UUGAGAAUCCAUA1066UCUACAUAUGGAU
UGUAGAUCUCAA
8681037GACUACUUCCCAG1067CAUAUUCUGGGAA
AAUAUGGUAGUC
621038UCAACGACGAGAU1068CGCUCGAUCUCGU
CGAGCGCGUUGA
TABLE 4B — GNAQ (rat and mouse): sense and antisense sequences with 2 base overhangs Numbering for target sequences is Rat GNAQ NM_031036.
SEQStart
IDof target
NOSEQUENCE (5′-3′)Typesequence
1069UAUUCCCACCUAGUCGACUNNsense853
1070AGUCGACUAGGUGGGAAUANNantis853
1071UUCCCACCUAGUCGACUACNNsense855
1072GUAGUCGACUAGGUGGGAANNantis855
1073GCUUUUGAGAAUCCAUAUGNNsense367
1074CAUAUGGAUUCUCAAAAGCNNantis367
1075CGGAGGAUCAACGACGAGANNsense55
1076UCUCGUCGUUGAUCCUCCGNNantis55
1077AUCUGACUCUACCAAAUACNNsense459
1078GUAUUUGGUAGAGUCAGAUNNantis459
1079ACACAAUAAGGCUCAUGCANNsense312
1080UGCAUGAGCCUUAUUGUGUNNantis312
1081AGGAUCAUCCACGGGUCGGNNsense178
1082CCGACCCGUGGAUGAUCCUNNantis178
1083CCCAUACAAGUAUGAACACNNsense297
1084GUGUUCAUACUUGUAUGGGNNantis297
1085CAAUAAGGCUCAUGCACAANNsense315
1086UUGUGCAUGAGCCUUAUUGNNantis315
1087AGGAUCAACGACGAGAUCGNNsense58
1088CGAUCUCGUCGUUGAUCCUNNantis58
1089UCAUGCACAAUUGGUUCGANNsense324
1090UCGAACCAAUUGUGCAUGANNantis324
1091GGAUCAACGACGAGAUCGANNsense59
1092UCGAUCUCGUCGUUGAUCCNNantis59
1093AGAGCUUGUGGAAUGAUCCNNsense398
1094GGAUCAUUCCACAAGCUCUNNantis398
1095GAGGAUCAACGACGAGAUCNNsense57
1096GAUCUCGUCGUUGAUCCUCNNantis57
1097GGAGGAUCAACGACGAGAUNNsense56
1098AUCUCGUCGUUGAUCCUCCNNantis56
1099UUUUGAGAAUCCAUAUGUANNsense369
1100UACAUAUGGAUUCUCAAAANNantis369
1101CAAGGAAGCCCGGAGGAUCNNsense45
1102GAUCCUCCGGGCUUCCUUGNNantis45
1103UCUGACUCUACCAAAUACUNNsense460
1104AGUAUUUGGUAGAGUCAGANNantis460
1105AAGCGCGACGCCCGCCGGGNNsense97
1106CCCGGCGGGCGUCGCGCUUNNantis97
1107ACAAUAAGGCUCAUGCACANNsense314
1108UGUGCAUGAGCCUUAUUGUNNantis314
1109UAAGGCUCAUGCACAAUUGNNsense318
1110CAAUUGUGCAUGAGCCUUANNantis318
1111AAGCCCGGAGGAUCAACGANNsense50
1112UCGUUGAUCCUCCGGGCUUNNantis50
1113CUCAUGCACAAUUGGUUCGNNsense323
1114CGAACCAAUUGUGCAUGAGNNantis323
1115UGCACAAUUGGUUCGAGAGNNsense327
1116CUCUCGAACCAAUUGUGCANNantis327
1117CACAAUUGGUUCGAGAGGUNNsense329
1118ACCUCUCGAACCAAUUGUGNNantis329
1119CUAGUCGACUACUUCCCAGNNsense862
1120CUGGGAAGUAGUCGACUAGNNantis862
1121GCAGGGACAAGCGCGACGCNNsense89
1122GCGUCGCGCUUGUCCCUGCNNantis89
1123UUGAGAAUCCAUAUGUAGANNsense371
1124UCUACAUAUGGAUUCUCAANNantis371
1125GACUACUUCCCAGAAUAUGNNsense868
1126CAUAUUCUGGGAAGUAGUCNNantis868
1127UCAACGACGAGAUCGAGCGNNsense62
1128CGCUCGAUCUCGUCGUUGANNantis62
TABLE 4C — GNAQ (rat and mouse): sense and antisense sequences with dTdT overhangs Numbering for target sequences is Rat GNAQ NM_031036.
SEQStart of
IDtarget
NOSEQUENCE (5′-3′)Strandsequence
1129UAUUCCCACCUAGUCGACUdTdTsense853
1130AGUCGACUAGGUGGGAAUAdTdTantis853
1131UUCCCACCUAGUCGACUACdTdTsense855
1132GUAGUCGACUAGGUGGGAAdTdTantis855
1133GCUUUUGAGAAUCCAUAUGdTdTsense367
1134CAUAUGGAUUCUCAAAAGCdTdTantis367
1135CGGAGGAUCAACGACGAGAdTdTsense55
1136UCUCGUCGUUGAUCCUCCGdTdTantis55
1137AUCUGACUCUACCAAAUACdTdTsense459
1138GUAUUUGGUAGAGUCAGAUdTdTantis459
1139ACACAAUAAGGCUCAUGCAdTdTsense312
1140UGCAUGAGCCUUAUUGUGUdTdTantis312
1141AGGAUCAUCCACGGGUCGGdTdTsense178
1142CCGACCCGUGGAUGAUCCUdTdTantis178
1143CCCAUACAAGUAUGAACACdTdTsense297
1144GUGUUCAUACUUGUAUGGGdTdTantis297
1145CAAUAAGGCUCAUGCACAAdTdTsense315
1146UUGUGCAUGAGCCUUAUUGdTdTantis315
1147AGGAUCAACGACGAGAUCGdTdTsense58
1148CGAUCUCGUCGUUGAUCCUdTdTantis58
1149UCAUGCACAAUUGGUUCGAdTdTsense324
1150UCGAACCAAUUGUGCAUGAdTdTantis324
1151GGAUCAACGACGAGAUCGAdTdTsense59
1152uCGAUCUCGUCGUUGAUCCdTdTantis59
1153AGAGCUUGUGGAAUGAUCCdTdTsense398
1154GGAUCAUUCCACAAGCUCUdTdTantis398
1155GAGGAUCAACGACGAGAUCdTdTsense57
1156GAUCUCGUCGUUGAUCCUCdTdTantis57
1157GGAGGAUCAACGACGAGAUdTdTsense56
1158AUCUCGUCGUUGAUCCUCCdTdTantis56
1159UUUUGAGAAUCCAUAUGUAdTdTsense369
1160UACAUAUGGAUUCUCAAAAdTdTantis369
1161CAAGGAAGCCCGGAGGAUCdTdTsense45
1162GAUCCUCCGGGCUUCCUUGdTdTantis45
1163UCUGACUCUACCAAAUACUdTdTsense460
1164AGUAULUGGUAGAGUCAGAdTdTantis460
1165AAGCGCGACGCCCGCCGGGdTdTsense97
1166CCCGGCGGGCGUCGCGCUUdTdTantis97
1167ACAAUAAGGCUCAUGCACAdTdTsense314
1168UGUGCAUGAGCCUUAUUGUdTdTantis314
1169UAAGGCUCAUGCACAAUUGdTdTsense318
1170CAAUUGUGCAUGAGCCUUAdTdTantis318
1171AAGCCCGGAGGAUCAACGAdTdTsense50
1172UCGUUGAUCCUCCGGGCUUdTdTantis50
1173CUCAUGCACAAUUGGUUCGdTdTsense323
1174CGAACCAAUUGUGCAUGAGdTdTantis323
1175UGCACAAUUGGUUCGAGAGdTdTsense327
1176CUCUCGAACCAAUUGUGCAdTdTantis327
1177CACAAUUGGUUCGAGAGGUdTdTsense329
1178ACCUCUCGAACCAAUUGUGdTdTantis329
1179CUAGUCGACUACUUCCCAGdTdTsense862
1180CUGGGAAGUAGUCGACUAGdTdTantis862
1181GCAGGGACAAGCGCGACGCdTdTsense89
1182GCGUCGCGCUUGUCCCUGCdTdTantis89
1183UUGAGAAUCCAUAUGUAGAdTdTsense371
1184uCuACAUAUGGAUUCUCAAdTdTantis371
1185GACUACUUCCCAGAAUAUGdTdTsense868
1186CAUAUUCUGGGAAGUAGUCdTdTantis868
1187UCAACGACGAGAUCGAGCGdTdTsense62
1188CGCUCGAUCUCGUCGUUGAdTdTantis62
TABLE 4D — GNAQ dsRNA (rat and mouse): modified sense and antisense strands Numbering for target sequences is Rat GNAQ NM_031036.
Start ofSEQ
targetID
SEQUENCE (5′-3′)StrandsequenceNO:
Modifications: Sense strand - all pyrimidines
(U, C)are 2′OMe; antisense strand -
pyrimidines adjacent to A (UA, CA) are
2′Ome; 3′ end is dTdT
uAuucccAccuAGucGAcudTdTsense8531189
AGUCGACuAGGUGGGAAuAdTdTantis8531190
uucccAccuAGucGAcuAcdTdTsense8551191
GuAGUCGACuAGGUGGGAAdTdTantis8551192
GcuuuuGAGAAuccAuAuGdTdTsense3671193
cAuAUGGAUUCUcAAAAGCdTdTantis3671194
cGGAGGAucAAcGAcGAGAdTdTsense551195
UCUCGUCGUUGAUCCUCCGdTdTantis551196
AucuGAcucuAccAAAuAcdTdTsense4591197
GuAUUUGGuAGAGUcAGAUdTdTantis4591198
AcAcAAuAAGGcucAuGcAdTdTsense3121199
UGcAUGAGCCUuAUUGUGUdTdTantis3121200
AGGAucAuccAcGGGucGGdTdTsense1781201
CCGACCCGUGGAUGAUCCUdTdTantis1781202
cccAuAcAAGuAuGAAcAcdTdTsense2971203
GUGUUcAuACUUGuAUGGGdTdTantis2971204
cAAuAAGGcucAuGcAcAAdTdTsense3151205
UUGUGcAUGAGCCUuAUUGdTdTantis3151206
AGGAucAAcGAcGAGAucGdTdTsense581207
CGAUCUCGUCGUUGAUCCUdTdTantis581208
ucAuGcAcAAuuGGuucGAdTdTsense3241209
UCGAACcAAUUGUGcAUGAdTdTantis3241210
GGAucAAcGAcGAGAucGAdTdTsense591211
UCGAUCUCGUCGUUGAUCCdTdTantis591212
AGAGcuuGuGGAAuGAuccdTdTsense3981213
GGAUcAUUCcAcAAGCUCUdTdTantis3981214
GAGGAucAAcGAcGAGAucdTdTsense571215
GAUCUCGUCGUUGAUCCUCdTdTantis571216
GGAGGAucAAcGAcGAGAudTdTsense561217
AUCUCGUCGUUGAUCCUCCdTdTantis561218
uuuuGAGAAuccAuAuGuAdTdTsense3691219
uAcAuAUGGAUUCUcAAAAdTdTantis3691220
cAAGGAAGcccGGAGGAucdTdTsense451221
GAUCCUCCGGGCUUCCUUGdTdTantis451222
ucuGAcucuAccAAAuAcudTdTsense4601223
AGuAUUUGGuAGAGUcAGAdTdTantis4601224
AAGcGcGAcGcccGccGGGdTdTsense971225
CCCGGCGGGCGUCGCGCUUdTdTantis971226
AcAAuAAGGcucAuGcAcAdTdTsense3141227
UGUGcAUGAGCCUuAUUGUdTdTantis3141228
uAAGGcucAuGcAcAAuuGdTdTsense3181229
cAAUUGUGcAUGAGCCUuAdTdTantis3181230
AAGcccGGAGGAucAAcGAdTdTsense501231
UCGUUGAUCCUCCGGGCUUdTdTantis501232
cucAuGcAcAAuuGGuucGdTdTsense3231233
CGAACcAAUUGUGcAUGAGdTdTantis3231234
uGcAcAAuuGGuucGAGAGdTdTsense3271235
CUCUCGAACcAAUUGUGcAdTdTantis3271236
cAcAAuuGGuucGAGAGGudTdTsense3291237
ACCUCUCGAACcAAUUGUGdTdTantis3291238
cuAGucGAcuAcuucccAGdTdTsense8621239
CUGGGAAGuAGUCGACuAGdTdTantis8621240
GcAGGGAcAAGcGcGAcGcdTdTsense891241
GCGUCGCGCUUGUCCCUGCdTdTantis891242
uuGAGAAuccAuAuGuAGAdTdTsense3711243
UCuAcAuAUGGAUUCUcAAdTdTantis3711244
GAcuAcuucccAGAAuAuGdTdTsense8681245
cAuAUUCUGGGAAGuAGUCdTdTantis8681246
ucAAcGAcGAGAucGAGcGdTdTsense621247
CGCUCGAUCUCGUCGUUGAdTdTantis621248
Modifications: Sense strand - all pyrimidines
(U, C) are 2′OMe; antisense strand -
pyrimidines adjacent to A (UA, CA) are
2′Ome; 3′ end is thio (dTsdT)
uAuucccAccuAGucGAcudTsdTsense8531249
AGUCGACuAGGUGGGAAuAdTsdTantis8531250
uucccAccuAGucGAcuAcdTsdTsense8551251
GuAGUCGACuAGGUGGGAAdTsdTantis8551252
GcuuuuGAGAAuccAuAuGdTsdTsense3671253
cAuAUGGAUUCUcAAAAGCdTsdTantis3671254
cGGAGGAucAAcGAcGAGAdTsdTsense551255
UCUCGUCGUUGAUCCUCCGdTsdTantis551256
AucuGAcucuAccAAAuAcdTsdTsense4591257
GuAUUUGGuAGAGUcAGAUdTsdTantis4591258
AcAcAAuAAGGcucAuGcAdTsdTsense3121259
UGcAUGAGCCUuAUUGUGUdTsdTantis3121260
AGGAucAuccAcGGGucGGdTsdTsense1781261
CCGACCCGUGGAUGAUCCUdTsdTantis1781262
cccAuAcAAGuAuGAAcAcdTsdTsense2971263
GUGUUcAuACUUGuAUGGGdTsdTantis2971264
cAAuAAGGcucAuGcAcAAdTsdTsense3151265
UUGUGcAUGAGCCUuAUUGdTsdTantis3151266
AGGAucAAcGAcGAGAucGdTsdTsense581267
CGAUCUCGUCGUUGAUCCUdTsdTantis581268
ucAuGcAcAAuuGGuucGAdTsdTsense3241269
UCGAACcAAUUGUGcAUGAdTsdTantis3241270
GGAucAAcGAcGAGAucGAdTsdTsense591271
UCGAUCUCGUCGUUGAUCCdTsdTantis591272
AGAGcuuGuGGAAuGAuccdTsdTsense3981273
GGAUcAUUCcAcAAGCUCUdTsdTantis3981274
GAGGAucAAcGAcGAGAucdTsdTsense571275
GAUCUCGUCGUUGAUCCUCdTsdTantis571276
GGAGGAucAAcGAcGAGAudTsdTsense561277
AUCUCGUCGUUGAUCCUCCdTsdTantis561278
uuuuGAGAAuccAuAuGuAdTsdTsense3691279
uAcAuAUGGAUUCUcAAAAdTsdTantis3691280
cAAGGAAGcccGGAGGAucdTsdTsense451281
GAUCCUCCGGGCUUCCUUGdTsdTantis451282
ucuGAcucuAccAAAuAcudTsdTsense4601283
AGuAUUUGGuAGAGUcAGAdTsdTantis4601284
AAGcGcGAcGcccGccGGGdTsdTsense971285
CCCGGCGGGCGUCGCGCUUdTsdTantis971286
AcAAuAAGGcucAuGcAcAdTsdTsense3141287
UGUGcAUGAGCCUuAUUGUdTsdTantis3141288
uAAGGcucAuGcAcAAuuGdTsdTsense3181289
cAAUUGUGcAUGAGCCUuAdTsdTantis3181290
AAGcccGGAGGAucAAcGAdTsdTsense501291
UCGUUGAUCCUCCGGGCUUdTsdTantis501292
cucAuGcAcAAuuGGuucGdTsdTsense3231293
CGAACcAAUUGUGcAUGAGdTsdTantis3231294
uGcAcAAuuGGuucGAGAGdTsdTsense3271295
CUCUCGAACcAAUUGUGcAdTsdTantis3271296
cAcAAuuGGuucGAGAGGudTsdTsense3291297
ACCUCUCGAACcAAUUGUGdTsdTantis3291298
cuAGucGAcuAcuucccAGdTsdTsense8621299
CUGGGAAGuAGUCGACuAGdTsdTantis8621300
GcAGGGAcAAGcGcGAcGcdTsdTsense891301
GCGUCGCGCUUGUCCCUGCdTsdTantis891302
uuGAGAAuccAuAuGuAGAdTsdTsense3711303
UCuAcAuAUGGAUUCUcAAdTsdTantis3711304
GAcuAcuucccAGAAuAuGdTsdTsense8681305
cAuAUUCUGGGAAGuAGUCdTsdTantis8681306
ucAAcGAcGAGAucGAGcGdTsdTsense621307
CGCUCGAUCUCGUCGUUGAdTsdTantis621308
Modifications: Sense strand - all pyrimidines
are 2′OMe; antisense strand - pyrimidines
adjacent to A (UA, CA) + U adjacent to
another U (UU) or G (UG) are 2′Ome;
3′ end is thio (dTsdT).
uAuucccAccuAGucGAcudTsdTsense8531309
AGUCGACuAGGuGGGAAuAdTsdTantis8531310
uucccAccuAGucGAcuAcdTsdTsense8551311
GuAGUCGACuAGGuGGGAAdTsdTantis8551312
GcuuuuGAGAAuccAuAuGdTsdTsense3671313
cAuAuGGAuUCUcAAAAGCdTsdTantis3671314
cGGAGGAucAAcGAcGAGAdTsdTsense551315
UCUCGUCGuuGAUCCUCCGdTsdTantis551316
AucuGAcucuAccAAAuAcdTsdTsense4591317
GuAuUuGGuAGAGUcAGAUdTsdTantis4591318
AcAcAAuAAGGcucAuGcAdTsdTsense3121319
uGcAuGAGCCUuAuuGuGUdTsdTantis3121320
AGGAucAuccAcGGGucGGdTsdTsense1781321
CCGACCCGuGGAuGAUCCUdTsdTantis1781322
cccAuAcAAGuAuGAAcAcdTsdTsense2971323
GuGuUcAuACuuGuAuGGGdTsdTantis2971324
cAAuAAGGcucAuGcAcAAdTsdTsense3151325
uuGuGcAuGAGCCUuAuuGdTsdTantis3151326
AGGAucAAcGAcGAGAucGdTsdTsense581327
CGAUCUCGUCGuuGAUCCUdTsdTantis581328
ucAuGcAcAAuuGGuucGAdTsdTsense3241329
UCGAACcAAuuGuGcAuGAdTsdTantis3241330
GGAucAAcGAcGAGAucGAdTsdTsense591331
UCGAUCUCGUCGuuGAUCCdTsdTantis591332
AGAGcuuGuGGAAuGAuccdTsdTsense3981333
GGAUcAuUCcAcAAGCUCUdTsdTantis3981334
GAGGAucAAcGAcGAGAucdTsdTsense571335
GAUCUCGUCGuuGAUCCUCdTsdTantis571336
GGAGGAucAAcGAcGAGAudTsdTsense561337
AUCUCGUCGuuGAUCCUCCdTsdTantis561338
uuuuGAGAAuccAuAuGuAdTsdTsense3691339
uAcAuAuGGAuUCUcAAAAdTsdTantis3691340
cAAGGAAGcccGGAGGAucdTsdTsense451341
GAUCCUCCGGGCuUCCuuGdTsdTantis451342
ucuGAcucuAccAAAuAcudTsdTsense4601343
AGuAuUuGGuAGAGUcAGAdTsdTantis4601344
AAGcGcGAcGcccGccGGGdTsdTsense971345
CCCGGCGGGCGUCGCGCuUdTsdTantis971346
AcAAuAAGGcucAuGcAcAdTsdTsense3141347
uGuGcAuGAGCCUuAuuGUdTsdTantis3141348
uAAGGcucAuGcAcAAuuGdTsdTsense3181349
cAAuuGuGcAuGAGCCUuAdTsdTantis3181350
AAGcccGGAGGAucAAcGAdTsdTsense501351
UCGuuGAUCCUCCGGGCuUdTsdTantis501352
cucAuGcAcAAuuGGuucGdTsdTsense3231353
CGAACcAAuuGuGcAuGAGdTsdTantis3231354
uGcAcAAuuGGuucGAGAGdTsdTsense3271355
CUCUCGAACcAAuuGuGcAdTsdTantis3271356
cAcAAuuGGuucGAGAGGudTsdTsense3291357
ACCUCUCGAACcAAuuGuGdTsdTantis3291358
cuAGucGAcuAcuucccAGdTsdTsense8621359
CuGGGAAGuAGUCGACuAGdTsdTantis8621360
GcAGGGAcAAGcGcGAcGcdTsdTsense891361
GCGUCGCGCuuGUCCCuGCdTsdTantis891362
uuGAGAAuccAuAuGuAGAdTsdTsense3711363
UCuAcAuAuGGAuUCUcAAdTsdTantis3711364
GAcuAcuucccAGAAuAuGdTsdTsense8681365
cAuAuUCuGGGAAGuAGUCdTsdTantis8681366
ucAAcGAcGAGAucGAGcGdTsdTsense621367
CGCUCGAUCUCGUCGuuGAdTsdTantis621368
TABLE 5 — Duplex (dsRNA) names and corresponding sample names
Sample nameDuplex NamessRNA name
1AD-2003236864
36865
2AD-2003336866
36867
3AD-2003436868
36869
4AD-2003536870
36871
5AD-2003636872
36873
6AD-2003736874
36875
7AD-2003836876
36877
8AD-2003936878
36879
9AD-2004036880
36881
10AD-2004136882
36883
11AD-2004236884
36885
12AD-2004336886
36887
13AD-2004436888
36889
14AD-2004536890
36891
15AD-2004636892
36893
16AD-2004736894
36895
17AD-2004836896
36897
18AD-2004936898
36899
19AD-2005036900
36901
20AD-2005136902
36903
21AD-2005236904
36905
22AD-2005336906
36907
23AD-2005436910
36911
24AD-2005536912
36913
25AD-2005636914
36915
26AD-2005736916
36917
27AD-2005836918
36919
28AD-2005936920
36921
29AD-2006036922
36923
30AD-2006136924
36925
31AD-2006236926
36927
32AD-2006336928
36929
33AD-2006436930
36931
34AD-2006536932
36933
35AD-2006636934
36935
36AD-2006736936
36937
37AD-2006836938
36939
38AD-2006936940
36941
39AD-2007036942
36943
40AD-2007136946
36947
41AD-2007236948
36949
42AD-2007336950
36951
43AD-2007436954
36955
87AD-2007536956
36957
44AD-2007636958
36959
45AD-2007736960
36961
46AD-2007836962
36963
47AD-2007936964
36965
48AD-2008036966
36967
49AD-2008136968
36969
50AD-2008236970
36971
51AD-2008336972
36973
52AD-2008436974
36975
53AD-2008536976
36977
54AD-2008636978
36979
55AD-2008736980
36981
56AD-2008836982
36983
57AD-2008936984
36985
58AD-2009036986
36987
59AD-2009136988
36989
60AD-2009236990
36991
61AD-2009336992
36993
62AD-2009436994
36995
63AD-2009536996
36997
64AD-2009636998
36999
65AD-2009737000
37001
88AD-2009837002
37003
66AD-2009937004
37005
67AD-2010037006
37007
68AD-2010137008
37009
69AD-2010237010
37011
89AD-2010337012
37013
70AD-2010437014
37015
95AD-2010537016
37017
71AD-2010637018
37019
72AD-2010737022
37023
73AD-2010837024
37025
74AD-2010937026
37027
75AD-2011037032
37033
76AD-2011137034
37035
77AD-2011237036
37037
78AD-2011337038
37039
79AD-2011437040
37041
80AD-2011537042
37043
81AD-2011637044
37045
82AD-2011737046
37047
83AD-2011837048
37049
84AD-2011937050
37051
85AD-2012037052
37053
86AD-2012137054
37055
91AD-2019336908
36909
92AD-2019436945
36944
93AD-2019537020
37021
94AD-2019637028
37029
95AD-2019737030
37031
TABLE 6 — Sequences of dsRNA targeting Human GNAQ (NM 002072.2) (target is position of 5′ base on transcript of NM_002072.2
SEQSEQ
DuplexIDUnmodified sequenceIDModified sequence
nameStrandTargetNO:5′ to 3′NO:5′ to 3′
AD-20032S12151369UACUAAUUUAUUGCCGUCC1527uAcuAAuuuAuuGccGuccdTdT
A12151370GGACGGCAAUAAAUUAGUA1528GGACGGcAAuAAAUuAGuAdTdT
AD-20033S12171371CUAAUUUAUUGCCGUCCUG1529cuAAuuuAuuGccGuccuGdTdT
A12171372CAGGACGGCAAUAAAUUAG1530cAGGACGGcAAuAAAUuAGdTdT
AD-20034S12161373ACUAAUUUAUUGCCGUCCU1531AcuAAuuuAuuGccGuccudTdT
A12161374AGGACGGCAAUAAAUUAGU1532AGGACGGcAAuAAAUuAGUdTdT
AD-20035S13221375GUACAGUCCCAGCACAUUU1533GuAcAGucccAGcAcAuuudTdT
A13221376AAAUGUGCUGGGACUGUAC1534AAAUGUGCUGGGACUGuACdTdT
AD-20036S12201377AUUUAUUGCCGUCCUGGAC1535AuuuAuuGccGuccuGGAcdTdT
A12201378GUCCAGGACGGCAAUAAAU1536GUCcAGGACGGcAAuAAAUdTdT
AD-20037S12651379GUAGUAAAUAUUAUGAUUU1537GuAGuAAAuAuuAuGAuuudTdT
A12651380AAAUCAUAAUAUUUACUAC1538AAAUcAuAAuAUUuACuACdTdT
AD-20038S12181381UAAUUUAUUGCCGUCCUGG1539uAAuuuAuuGccGuccuGGdTdT
A12181382CCAGGACGGCAAUAAAUUA1540CcAGGACGGcAAuAAAUuAdTdT
AD-20039S11751383ACAAGAGGGACUGUAUUUC1541AcAAGAGGGAcuGuAuuucdTdT
A11751384GAAAUACAGUCCCUCUUGU1542GAAAuAcAGUCCCUCUUGUdTdT
AD-20040S12231385UAUUGCCGUCCUGGACUCU1543uAuuGccGuccuGGAcucudTdT
A12231386AGAGUCCAGGACGGCAAUA1544AGAGUCcAGGACGGcAAuAdTdT
AD-20041S13191387GAAGUACAGUCCCAGCACA1545GAAGuAcAGucccAGcAcAdTdT
A13191388UGUGCUGGGACUGUACUUC1546UGUGCUGGGACUGuACUUCdTdT
AD-20042S12851389AUUUAAACUAUUCAGAGGA1547AuuuAAAcuAuucAGAGGAdTdT
A12851390UCCUCUGAAUAGUUUAAAU1548UCCUCUGAAuAGUUuAAAUdTdT
AD-20043S12131391AAUACUAAUUUAUUGCCGU1549AAuAcuAAuuuAuuGccGudTdT
A12131392ACGGCAAUAAAUUAGUAUU1550ACGGcAAuAAAUuAGuAUUdTdT
AD-20044S18101393CAGCCAUAGCUUGAUUGCU1551cAGccAuAGcuuGAuuGcudTdT
A18101394AGCAAUCAAGCUAUGGCUG1552AGcAAUcAAGCuAUGGCUGdTdT
AD-20045S15901395GUCAGGACACAUCGUUCGA1553GucAGGAcAcAucGuucGAdTdT
A15901396UCGAACGAUGUGUCCUGAC1554UCGAACGAUGUGUCCUGACdTdT
AD-20046S11491397CUUCCCUGGUGGGCUAUUG1555cuucccuGGuGGGcuAuuGdTdT
A11491398CAAUAGCCCACCAGGGAAG1556cAAuAGCCcACcAGGGAAGdTdT
AD-20047S19711399GACACUACAUUACCCUAAU1557GAcAcuAcAuuAcccuAAudTdT
A19711400AUUAGGGUAAUGUAGUGUC1558AUuAGGGuAAUGuAGUGUCdTdT
AD-20048S12371401ACUCUGUGUGAGCGUGUCC1559AcucuGuGuGAGcGuGuccdTdT
A12371402GGACACGCUCACACAGAGU1560GGAcACGCUcAcAcAGAGUdTdT
AD-20049S11521403CCCUGGUGGGCUAUUGAAG1561cccuGGuGGGcuAuuGAAGdTdT
A11521404CUUCAAUAGCCCACCAGGG1562CUUcAAuAGCCcACcAGGGdTdT
AD-20050S15751405CUCUCAAAUGAUACAGUCA1563cucucAAAuGAuAcAGucAdTdT
A15751406UGACUGUAUCAUUUGAGAG1564UGACUGuAUcAUUUGAGAGdTdT
AD-20051S11051407AGUACAAUCUGGUCUAAUU1565AGuAcAAucuGGucuAAuudTdT
A11051408AAUUAGACCAGAUUGUACU1566AAUuAGACcAGAUUGuACUdTdT
AD-20052S14071409CACAAAGAUAAGACUUGUU1567cAcAAAGAuAAGAcuuGuudTdT
A14071410AACAAGUCUUAUCUUUGUG1568AAcAAGUCUuAUCUUUGUGdTdT
AD-20053S11081411ACAAUCUGGUCUAAUUGUG1569AcAAucuGGucuAAuuGuGdTdT
A11081412CACAAUUAGACCAGAUUGU1570cAcAAUuAGACcAGAUUGUdTdT
AD-20193S13951413CAGUCAUGCACUCACAAAG1571cAGucAuGcAcucAcAAAGdTdT
A13951414CUUUGUGAGUGCAUGACUG1572CUUUGUGAGUGcAUGACUGdTdT
AD-20054S15951415GACACAUCGUUCGAUUUAA1573GAcAcAucGuucGAuuuAAdTdT
A15951416UUAAAUCGAACGAUGUGUC1574UuAAAUCGAACGAUGUGUCdTdT
AD-20055S19921417CUGCUACCCAGAACCUUUU1575cuGcuAcccAGAAccuuuudTdT
A19921418AAAAGGUUCUGGGUAGCAG1576AAAAGGUUCUGGGuAGcAGdTdT
AD-20056S18091419UCAGCCAUAGCUUGAUUGC1577ucAGccAuAGcuuGAuuGcdTdT
A18091420GCAAUCAAGCUAUGGCUGA1578GcAAUcAAGCuAUGGCUGAdTdT
AD-20057S12031421CAAUUUGCAUAAUACUAAU1579cAAuuuGcAuAAuAcuAAudTdT
A12031222AUUAGUAUUAUGCAAAUUG1580AUuAGuAUuAUGcAAAUUGdTdT
AD-20058S18041423UACCUUCAGCCAUAGCUUG1581uAccuucAGccAuAGcuuGdTdT
A18041424CAAGCUAUGGCUGAAGGUA1582cAAGCuAUGGCUGAAGGuAdTdT
AD-20059S19681425ACAGACACUACAUUACCCU1583AcAGAcAcuAcAuuAcccudTdT
A19681426AGGGUAAUGUAGUGUCUGU1584AGGGuAAUGuAGUGUCUGUdTdT
AD-20060S12141427AUACUAAUUUAUUGCCGUC1585AuAcuAAuuuAuuGccGucdTdT
A12141428GACGGCAAUAAAUUAGUAU1586GACGGcAAuAAAUuAGuAUdTdT
AD-20061S11591429GGGCUAUUGAAGAUACACA1587GGGcuAuuGAAGAuAcAcAdTdT
A11591430UGUGUAUCUUCAAUAGCCC1588UGUGuAUCUUcAAuAGCCCdTdT
AD-20062S16031431GUUCGAUUUAAGCCAUCAU1589GuucGAuuuAAGccAucAudTdT
A16031432AUGAUGGCUUAAAUCGAAC1590AUGAUGGCUuAAAUCGAACdTdT
AD-20063S11231433UGUGCCUCCUAGACACCCG1591uGuGccuccuAGAcAcccGdTdT
A11231434CGGGUGUCUAGGAGGCACA1592CGGGUGUCuAGGAGGcAcAdTdT
AD-20064S12331435CUGGACUCUGUGUGAGCGU1593cuGGAcucuGuGuGAGcGudTdT
A12331436ACGCUCACACAGAGUCCAG1594ACGCUcAcAcAGAGUCcAGdTdT
AD-20065S19301437ACCCUCUCUUUCAAUUGCA1595AcccucucuuucAAuuGcAdTdT
A19301438UGCAAUUGAAAGAGAGGGU1596UGcAAUUGAAAGAGAGGGUdTdT
AD-20066S19691439CAGACACUACAUUACCCUA1597cAGAcAcuAcAuuAcccuAdTdT
A19691440UAGGGUAAUGUAGUGUCUG1598uAGGGuAAUGuAGUGUCUGdTdT
AD-20067S12191441AAUUUAUUGCCGUCCUGGA1599AAuuuAuuGccGuccuGGAdTdT
A12191442UCCAGGACGGCAAUAAAUU1600UCcAGGACGGcAAuAAAUUdTdT
AD-20068S12411443UGUGUGAGCGUGUCCACAG1601uGuGuGAGcGuGuccAcAGdTdT
A12411444CUGUGGACACGCUCACACA1602CUGUGGAcACGCUcAcAcAdTdT
AD-20069S11531445CCUGGUGGGCUAUUGAAGA1603ccuGGuGGGcuAuuGAAGAdTdT
A11531446UCUUCAAUAGCCCACCAGG1604UCUUcAAuAGCCcACcAGGdTdT
AD-20070S18051447ACCUUCAGCCAUAGCUUGA1605AccuucAGccAuAGcuuGAdTdT
A18051448UCAAGCUAUGGCUGAAGGU1606UcAAGCuAUGGCUGAAGGUdTdT
AD-20194S13121449GGAUGCUGAAGUACAGUCC1607GGAuGcuGAAGuAcAGuccdTdT
A13121450GGACUGUACUUCAGCAUCC1608GGACUGuACUUcAGcAUCCdTdT
AD-20071S15461451AUCCUAGUUCCAUUCUUGG1609AuccuAGuuccAuucuuGGdTdT
A15461452CCAAGAAUGGAACUAGGAU1610CcAAGAAUGGAACuAGGAUdTdT
AD-20072S15471453UCCUAGUUCCAUUCUUGGU1611uccuAGuuccAuucuuGGudTdT
A15471454ACCAAGAAUGGAACUAGGA1612ACcAAGAAUGGAACuAGGAdTdT
AD-20073S11031455GGAGUACAAUCUGGUCUAA1613GGAGuAcAAucuGGucuAAdTdT
A11031456UUAGACCAGAUUGUACUCC1614UuAGACcAGAUUGuACUCCdTdT
A13341457CACAUUUCCUCUCUAUCUU1615cAcAuuuccucucuAucuudTdT
A13341458AAGAUAGAGAGGAAAUGUG1616AAGAuAGAGAGGAAAUGUGdTdT
AD-20074S12551459CACAGAGUUUGUAGUAAAU1617cAcAGAGuuuGuAGuAAAudTdT
A12551460AUUUACUACAAACUCUGUG1618AUUuACuAcAAACUCUGUGdTdT
AD-20075S19671461AACAGACACUACAUUACCC1619AAcAGAcAcuAcAuuAcccdTdT
A19671462GGGUAAUGUAGUGUCUGUU1620GGGuAAUGuAGUGUCUGUUdTdT
AD-20076S13911463UUCUCAGUCAUGCACUCAC1621uucucAGucAuGcAcucAcdTdT
A13911464GUGAGUGCAUGACUGAGAA1622GUGAGUGcAUGACUGAGAAdTdT
AD-20077S11241465GUGCCUCCUAGACACCCGC1623GuGccuccuAGAcAcccGcdTdT
A11241466GCGGGUGUCUAGGAGGCAC1624GCGGGUGUCuAGGAGGcACdTdT
AD-20078S16121467AAGCCAUCAUCAGCUUAAU1625AAGccAucAucAGcuuAAudTdT
A16121468AUUAAGCUGAUGAUGGCUU1626AUuAAGCUGAUGAUGGCUUdTdT
AD-20079S19331469CUCUCUUUCAAUUGCAGAU1627cucucuuucAAuuGcAGAudTdT
A19331470AUCUGCAAUUGAAAGAGAG1628AUCUGcAAUUGAAAGAGAGdTdT
AD-20080S10781471ACACCAUCCUCCAGUUGAA1629AcAccAuccuccAGuuGAAdTdT
A10781472UUCAACUGGAGGAUGGUGU1630UUcAACUGGAGGAUGGUGUdTdT
AD-20081S15451473UAUCCUAGUUCCAUUCUUG1631uAuccuAGuuccAuucuuGdTdT
A15451474CAAGAAUGGAACUAGGAUA1632cAAGAAUGGAACuAGGAuAdTdT
AD-20082S11091475CAAUCUGGUCUAAUUGUGC1633cAAucuGGucuAAuuGuGcdTdT
A11091476GCACAAUUAGACCAGAUUG1634GcAcAAUuAGACcAGAUUGdTdT
AD-20083S13981477UCAUGCACUCACAAAGAUA1635ucAuGcAcucAcAAAGAuAdTdT
A13981478UAUCUUUGUGAGUGCAUGA1636uAUCUUUGUGAGUGcAUGAdTdT
AD-20084S19701479AGACACUACAUUACCCUAA1637AGAcAcuAcAuuAcccuAAdTdT
A19701480UUAGGGUAAUGUAGUGUCU1638UuAGGGuAAUGuAGUGUCUdTdT
AD-20085S11731481ACACAAGAGGGACUGUAUU1639AcAcAAGAGGGAcuGuAuudTdT
A11731482AAUACAGUCCCUCUUGUGU1640AAuAcAGUCCCUCUUGUGUdTdT
AD-20086S13131483GAUGCUGAAGUACAGUCCC1641GAuGcuGAAGuAcAGucccdTdT
A13131484GGGACUGUACUUCAGCAUC1642GGGACUGuACUUcAGcAUCdTdT
AD-20087S18111485AGCCAUAGCUUGAUUGCUC1643AGccAuAGcuuGAuuGcucdTdT
A18111486GAGCAAUCAAGCUAUGGCU1644GAGcAAUcAAGCuAUGGCUdTdT
AD-20088S18621487CACAGGAGUCCUUUCUUUU1645cAcAGGAGuccuuucuuuudTdT
A18621488AAAAGAAAGGACUCCUGUG1646AAAAGAAAGGACUCCUGUGdTdT
AD-20089S16001489AUCGUUCGAUUUAAGCCAU1647AucGuucGAuuuAAGccAudTdT
A16001490AUGGCUUAAAUCGAACGAU1648AUGGCUuAAAUCGAACGAUdTdT
AD-20090S16181491UCAUCAGCUUAAUUUAAGU1649ucAucAGcuuAAuuuAAGudTdT
A16181492ACUUAAAUUAAGCUGAUGA1650ACUuAAAUuAAGCUGAUGAdTdT
AD-20091S13321493AGCACAUUUCCUCUCUAUC1651AGcAcAuuuccucucuAucdTdT
A13321494GAUAGAGAGGAAAUGUGCU1652GAuAGAGAGGAAAUGUGCUdTdT
AD-20092S11571495GUGGGCUAUUGAAGAUACA1653GuGGGcuAuuGAAGAuAcAdTdT
A11571496UGUAUCUUCAAUAGCCCAC1654UGuAUCUUcAAuAGCCcACdTdT
AD-20093S8881497AUCAUGUAUUCCCAUCUAG1655AucAuGuAuucccAucuAGdTdT
A8881498CUAGAUGGGAAUACAUGAU1656CuAGAUGGGAAuAcAUGAUdTdT
AD-20094S18551499AAAGACACACAGGAGUCCU1657AAAGAcAcAcAGGAGuccudTdT
A18551500AGGACUCCUGUGUGUCUUU1658AGGACUCCUGUGUGUCUUUdTdT
AD-20095S15791501CAAAUGAUACAGUCAGGAC1659cAAAuGAuAcAGucAGGAcdTdT
A15791502GUCCUGACUGUAUCAUUUG1660GUCCUGACUGuAUcAUUUGdTdT
AD-20096S8051503UUAGAACAAUUAUCACAUA1661uuAGAAcAAuuAucAcAuAdTdT
A8051504UAUGUGAUAAUUGUUCUAA1662uAUGUGAuAAUUGUUCuAAdTdT
AD-20097S15541505UCCAUUCUUGGUCAAGUUU1663uccAuucuuGGucAAGuuudTdT
A15541506AAACUUGACCAAGAAUGGA1664AAACUUGACcAAGAAUGGAdTdT
AD-20098S11131507CUGGUCUAAUUGUGCCUCC1665cuGGucuAAuuGuGccuccdTdT
A11131508GGAGGCACAAUUAGACCAG1666GGAGGcAcAAUuAGACcAGdTdT
AD-20099S11741509CACAAGAGGGACUGUAUUU1667cAcAAGAGGGAcuGuAuuudTdT
A11741510AAAUACAGUCCCUCUUGUG1668AAAuAcAGUCCCUCUUGUGdTdT
AD-20100S17351511UCUUGUCUCACUUUGGACU1669ucuuGucucAcuuuGGAcudTdT
A17351512AGUCCAAAGUGAGACAAGA1670AGUCcAAAGUGAGAcAAGAdTdT
AD-20101S14501513UUUUCUAUGGAGCAAAACA1671uuuucuAuGGAGcAAAAcAdTdT
A14501514UGUUUUGCUCCAUAGAAAA1672UGUUUUGCUCcAuAGAAAAdTdT
AD-20102S8041515UUUAGAACAAUUAUCACAU1673uuuAGAAcAAuuAucAcAudTdT
A8041516AUGUGAUAAUUGUUCUAAA1674AUGUGAuAAUUGUUCuAAAdTdT
AD-20103S18661517GGAGUCCUUUCUUUUGAAA1675GGAGuccuuucuuuuGAAAdTdT
A18661518UUUCAAAAGAAAGGACUCC1676UUUcAAAAGAAAGGACUCCdTdT
AD-20104S16101519UUAAGCCAUCAUCAGCUUA1677uuAAGccAucAucAGcuuAdTdT
A16101520UAAGCUGAUGAUGGCUUAA1678uAAGCUGAUGAUGGCUuAAdTdT
AD-20105S11171521UCUAAUUGUGCCUCCUAGA1679ucuAAuuGuGccuccuAGAdTdT
A11171522UCUAGGAGGCACAAUUAGA1680UCuAGGAGGcAcAAUuAGAdTdT
AD-20106S13201523AAGUACAGUCCCAGCACAU1681AAGuAcAGucccAGcAcAudTdT
A13201524AUGUGCUGGGACUGUACUU1682AUGUGCUGGGACUGuACUUdTdT
AD-20195S13171525CUGAAGUACAGUCCCAGCA1683cuGAAGuAcAGucccAGcAdTdT
A13171526UGCUGGGACUGUACUUCAG1684UGCUGGGACUGuACUUcAGdTdT
TABLE 7A — Sequences of dsRNA targeting Mouse GNAQ (NM_031036)(target is position of 5′ base on transcript of NM_031036
SEQUnmodifiedSEQModified
DuplexTar-IDsequenceIDsequence
NameStrandgetNO:5′ to 3′NO:5′ to 3′
AD-20107S8531685UAUUCCCACCUAG1719uAuucccAccuAGucGA
UCGACUcudTdT
A8531686AGUCGACUAGGUG1720AGUCGACuAGGUGGGAA
GGAAUAuAdTdT
AD-20108S8551687UUCCCACCUAGUC1721uucccAccuAGucGAcu
GACUACAcdTdT
A8551688GUAGUCGACUAGG1722GuAGUCGACuAGGUGGG
UGGGAAAAdTdT
AD-20109S3671689GCUUUUGAGAAUC1723GcuuuuGAGAAuccAuA
CAUAUGuGdTdT
A3671690CAUAUGGAUUCUC1724cAuAUGGAUUCUcAAAA
AAAAGCGCdTdT
AD-20196S551691CGGAGGAUCAACG1725cGGAGGAucAAcGAcGA
ACGAGAGAdTdT
A551692UCUCGUCGUUGAU1726UCUCGUCGUUGAUCCUC
CCUCCGCGdTdT
AD-20197S4591693AUCUGACUCUACC1727AucuGAcucuAccAAAu
AAAUACAcdTdT
A4591694GUAUUUGGUAGAG1728GuAUUUGGuAGAGUcAG
UCAGAUAUdTdT
AD-20110S3121695ACACAAUAAGGCU1729AcAcAAuAAGGcucAuG
CAUGCAcAdTdT
A3121696UGCAUGAGCCUUA1730UGcAUGAGCCUuAUUGU
UUGUGUGUdTdT
AD-20111S1781697AGGAUCAUCCACG1731AGGAucAuccAcGGGuc
GGUCGGGGdTdT
A1781698CCGACCCGUGGAU1732CCGACCCGUGGAUGAUC
GAUCCUCUdTdT
AD-20112S2971699CCCAUACAAGUAU1733cccAuAcAAGuAuGAAc
GAACACAcdTdT
A2971700GUGUUCAUACUUG1734GUGUUcAuACUUGuAUG
UAUGGGGGdTdT
AD-20113S3151701CAAUAAGGCUCAU1735cAAuAAGGcucAuGcAc
GCACAAAAdTdT
A3151702UUGUGCAUGAGCC1736UUGUGcAUGAGCCUuAU
UUAUUGUGdTdT
AD-20114S581703AGGAUCAACGACG1737AGGAucAAcGAcGAGAu
AGAUCGcGdTdT
A581704CGAUCUCGUCGUU1738CGAUCUCGUCGUUGAUC
GAUCCUCUdTdT
AD-20115S3241705UCAUGCACAAUUG1739ucAuGcAcAAuuGGuuc
GUUCGAGAdTdT
A3241706UCGAACCAAUUGU1740UCGAACcAAUUGUGcAU
GCAUGAGAdTdT
AD-20116S591707GGAUCAACGACGA1741GGAucAAcGAcGAGAuc
GAUCGAGAdTdT
A591708UCGAUCUCGUCGU1742UCGAUCUCGUCGUUGAU
UGAUCCCCdTdT
AD-20117S3981709AGAGCUUGUGGAA1743AGAGcuuGuGGAAuGAu
UGAUCCccdTdT
A3981710GGAUCAUUCCACA1744GGAUcAUUCcAcAAGCU
AGCUCUCUdTdT
AD-20118S571711GAGGAUCAACGAC1745GAGGAucAAcGAcGAGA
GAGAUCucdTdT
A571712GAUCUCGUCGUUG1746GAUCUCGUCGUUGAUCC
AUCCUCUCdTdT
AD-20119S561713GGAGGAUCAACGA1747GGAGGAucAAcGAcGAG
CGAGAUAudTdT
A561714AUCUCGUCGUUGA1748AUCUCGUCGUUGAUCCU
UCCUCCCCdTdT
AD-20120S3691715UUUUGAGAAUCCA1749uuuuGAGAAuccAuAuG
UAUGUAuAdTdT
A3691716UACAUAUGGAUUC1750uAcAuAUGGAUUCUcAA
UCAAAAAAdTdT
AD-20121S451717CAAGGAAGCCCGG1751cAAGGAAGcccGGAGGA
AGGAUCucdTdT
A451718GAUCCUCCGGGCU1752GAUCCUCCGGGCUUCCU
UCCUUGUGdTdT
TABLE 7B — Sequences of dsRNA targeting GNAQ (AD-20196 and AD-20197 only)
SEQUnmodifiedSEQModified
DuplexIDsequenceIDsequence
NameStrandNO:5′ to 3′NO:5′ to 3′
AD-20196S1753CGGAGGAUCA1757cGGAGGAucAAcGA
ACGACGAGAcGAGAdTdT
A1754UCUCGUCGUU1758UCUCGUCGUUGAUC
GAUCCUCCGCUCCGdTdT
AD-20197S1755AUCUGACUCU1759AucuGAcucuAccA
ACCAAAUACAAuAcdTdT
A1756GUAUUUGGUA1760GuAUUUGGuAGAGU
GAGUCAGAUcAGAUdTdT
TABLE 8 — A375 cells (0.1 nM) GNAQ dsRNA single dose in vitro screen A375 cells (0.1 nM conc.) St. Dev
Sample NameDuplex Name% Target Remainingerror
26AD-2005744.524.74
21AD-2005249.834.55
20AD-2005151.946.86
38AD-2006953.685.80
60AD-2009254.345.94
66AD-2009956.065.86
14AD-2004556.355.74
91AD-2019357.533.82
68AD-2010158.444.72
23AD-2005460.086.13
89AD-2010360.825.02
16AD-2004761.665.59
53AD-2008561.998.52
56AD-2008862.097.48
81AD-2011663.847.76
19AD-2005064.398.36
78AD-2011364.847.95
8AD-2003965.299.23
51AD-2008370.348.09
65AD-2009771.575.92
11AD-2004274.748.67
43AD-2007474.876.70
47AD-2007975.396.12
24AD-2005577.2436.15
58AD-2009077.659.17
57AD-2008978.329.94
44AD-2007678.595.98
46AD-2007879.005.54
64AD-2009680.395.96
48AD-2008080.6610.31
84AD-2011980.945.22
3AD-2003481.377.63
10AD-2004181.656.39
12AD-2004381.6511.97
6AD-2003781.7911.99
59AD-2009181.799.24
13AD-2004481.796.42
30AD-2006185.418.80
63AD-2009585.718.69
18AD-2004985.7110.26
75AD-2011086.6013.52
52AD-2008487.8111.94
69AD-2010287.816.48
94AD-2019688.586.22
71AD-2010688.739.38
70AD-2010489.3514.88
35AD-2006689.817.73
54AD-2008689.9712.64
45AD-2007790.2810.05
72AD-2010790.595.99
83AD-2011890.758.80
34AD-2006591.5412.41
62AD-2009492.0210.71
74AD-2010992.8211.79
79AD-2011492.8211.48
73AD-2010893.148.59
80AD-2011593.479.77
93AD-2019593.637.82
55AD-2008793.9515.29
76AD-2011193.9514.29
92AD-2019494.446.29
82AD-2011794.6112.80
15AD-2004694.6110.42
22AD-2005394.9316.04
77AD-2011295.1012.23
29AD-2006095.1011.08
67AD-2010095.2611.16
28AD-2005995.4311.09
32AD-2006395.9314.32
25AD-2005696.0912.23
9096.269.50
95AD-2010596.7610.01
9AD-2004097.107.88
17AD-2004897.1011.44
88AD-2009897.276.97
61AD-2009397.2712.46
39AD-2007097.439.70
7AD-2003897.6011.22
8797.948.37
49AD-2008198.459.22
31AD-2006298.6213.40
86AD-2012198.6210.71
50AD-2008298.7912.83
41AD-2007298.979.54
42AD-2007399.489.92
85AD-2012099.657.42
27AD-2005899.8316.38
33AD-20064100.3510.82
1AD-20032101.409.56
37AD-20068101.579.44
4AD-20035102.9915.49
2AD-20033103.7113.63
40AD-20071104.2510.82
5AD-20036106.2523.63
TABLE 9 — A375 cells (1.0 nM) single dose GNAQ in vitro screen A375 cells (1 nM conc.)
SampleSt. Dev
NameDuplex Name% Target Remainingerror
26AD-2005739.557.92
21AD-2005241.239.20
38AD-2006944.426.19
68AD-2010145.046.93
20AD-2005145.118.89
14AD-2004545.987.80
19AD-2005047.1111.07
53AD-2008547.529.93
56AD-2008847.609.91
16AD-2004748.358.35
66AD-2009948.448.52
78AD-2011348.698.81
81AD-2011649.209.77
23AD-2005449.718.20
89AD-2010349.807.27
91AD-2019351.298.73
65AD-2009752.279.60
60AD-2009252.466.04
51AD-2008355.649.34
58AD-2009057.309.63
8AD-2003957.7015.80
11AD-2004258.519.24
43AD-2007459.439.18
24AD-2005559.5313.24
47AD-2007959.748.98
57AD-2008959.9411.78
46AD-2007861.1012.31
18AD-2004961.318.08
30AD-2006163.1411.19
6AD-2003763.9110.65
10AD-2004164.2512.25
59AD-2009164.3610.87
3AD-2003465.2612.38
13AD-2004465.2610.78
64AD-2009666.5110.16
44AD-2007666.868.87
93AD-2019567.448.49
12AD-2004368.7412.02
94AD-2019668.9812.81
35AD-2006669.7010.38
54AD-2008670.7913.09
45AD-2007771.0410.55
84AD-2011971.288.50
52AD-2008471.5314.24
34AD-2006572.1512.77
29AD-2006074.4411.33
48AD-2008074.839.32
63AD-2009575.0912.36
75AD-2011075.3515.56
92AD-2019476.4012.95
70AD-2010476.6710.72
28AD-2005978.4112.71
74AD-2010978.5515.25
15AD-2004678.6912.82
55AD-2008779.3712.92
69AD-2010280.9011.23
31AD-2006280.9015.87
4AD-2003581.1819.43
83AD-2011882.4519.97
49AD-2008182.6015.95
67AD-2010082.8813.22
42AD-2007383.3214.05
25AD-2005684.1916.11
62AD-2009484.4813.94
41AD-2007284.9212.80
9AD-2004085.2115.48
71AD-2010685.5116.45
9085.8115.45
7AD-2003886.8516.09
79AD-2011487.7616.56
33AD-2006488.0720.64
80AD-2011588.0717.42
2AD-2003388.6816.03
61AD-2009389.7613.56
32AD-2006390.0714.83
36AD-2006790.239.73
77AD-2011290.5415.45
86AD-2012191.4920.81
95AD-2010591.6517.40
22AD-2005391.9720.15
5AD-2003692.1323.89
37AD-2006892.7714.46
39AD-2007093.0916.90
27AD-2005893.0917.29
17AD-2004893.2514.32
88AD-2009893.2514.60
82AD-2011793.4117.84
40AD-2007194.3915.66
50AD-2008294.8817.58
8795.7115.99
1AD-2003296.7114.37
73AD-2010896.7117.36
85AD-2012097.0411.67
72AD-20107108.0512.36
TABLE 10 — A549 cells (1.0 nM) single dose GNAQ in vitro screen A549 cells (1 nM conc.)
Sample NameDuplex Name% Target RemainingSt. Dev error
78AD-2011313.332.98
53AD-2008515.793.53
81AD-2011616.443.68
21AD-2005216.903.78
20AD-2005117.313.87
38AD-2006917.713.96
66AD-2009917.773.98
19AD-2005018.114.05
64AD-2009618.174.07
26AD-2005718.754.20
89AD-2010319.114.28
43AD-2007419.284.31
51AD-2008319.414.34
68AD-2010119.614.39
14AD-2004520.064.49
8AD-2003920.204.52
11AD-2004220.414.57
65AD-2009720.994.70
60AD-2009221.024.70
56AD-2008822.535.04
44AD-2007622.575.05
58AD-2009023.295.21
57AD-2008923.295.21
47AD-2007923.695.30
74AD-2010923.865.34
16AD-2004724.025.38
63AD-2009524.365.45
59AD-2009125.045.60
23AD-2005425.175.63
45AD-2007725.615.73
48AD-2008025.845.78
91AD-2019328.926.47
13AD-2004429.836.68
6AD-2003730.896.91
46AD-2007831.106.96
24AD-2005531.647.08
85AD-2012031.707.09
18AD-2004933.747.55
84AD-2011934.757.77
3AD-2003435.858.02
35AD-2006636.738.22
70AD-2010436.928.26
12AD-2004338.628.64
54AD-2008638.968.72
15AD-2004639.988.95
34AD-2006540.198.99
93AD-2019541.189.21
75AD-2011041.189.21
69AD-2010241.689.33
52AD-2008442.199.44
30AD-2006144.299.91
94AD-2019648.1310.77
40AD-2007148.2110.79
49AD-2008148.7210.90
10AD-2004148.8010.92
36AD-2006748.9710.96
29AD-2006050.7911.36
31AD-2006251.0511.42
9052.1211.66
55AD-2008752.3011.70
61AD-2009352.8511.83
2AD-2003353.5011.97
25AD-2005655.7712.48
4AD-2003556.2512.59
1AD-2003257.4312.85
92AD-2019460.1913.47
42AD-2007361.0313.65
5AD-2003661.4513.75
28AD-2005961.9913.87
50AD-2008262.0913.89
67AD-2010063.2914.16
83AD-2011864.0614.33
62AD-2009464.1714.36
27AD-2005864.9514.53
7AD-2003869.2615.50
79AD-2011471.4515.99
39AD-2007072.0716.13
41AD-2007274.6116.69
86AD-2012174.6116.69
33AD-2006475.3916.87
9AD-2004080.1117.92
72AD-2010782.2218.40
95AD-2010586.9019.45
73AD-2010887.9619.68
17AD-2004889.0419.92
88AD-2009890.1320.17
77AD-2011290.4420.24
80AD-2011591.0720.38
22AD-2005391.8620.55
37AD-2006892.5020.70
32AD-2006392.6620.73
76AD-2011192.8220.77
71AD-2010692.9820.80
82AD-20117109.8124.57
87110.1924.65
TABLE 11 — OMM1.3 cells (10 nM) single dose GNAQ in vitro screen OMM1.3 cells (10 nM conc.)
Sample% Target
NameDuplex NameRemainingSt. Dev error
85AD-2012051.127.27
58AD-2009051.8311.83
89AD-2010353.576.93
68AD-2010154.5010.88
64AD-2009654.609.30
57AD-2008954.9810.87
53AD-2008555.0711.92
38AD-2006955.5510.05
59AD-2009155.9413.82
51AD-2008356.4213.08
60AD-2009256.7211.64
65AD-2009757.618.03
45AD-2007757.8111.18
63AD-2009557.8110.19
43AD-2007458.0111.58
91AD-2019358.1110.38
26AD-2005758.2110.36
20AD-2005158.417.60
24AD-2005558.929.65
66AD-2009959.7410.83
44AD-2007659.7412.63
23AD-2005459.958.25
47AD-2007960.0611.09
56AD-2008860.0612.78
61AD-2009360.0613.48
41AD-2007260.3712.49
13AD-2004461.1112.23
35AD-2006661.3211.53
9061.5310.72
19AD-2005061.6410.53
14AD-2004561.857.21
15AD-2004661.9610.96
21AD-2005262.077.36
34AD-2006562.618.87
29AD-2006062.7111.52
16AD-2004762.938.91
93AD-2019563.2610.94
69AD-2010263.597.49
54AD-2008664.2516.58
50AD-2008264.5916.58
94AD-2019664.709.71
48AD-2008064.7012.16
30AD-2006164.819.02
A265.2613.18
70AD-2010465.838.26
A366.4111.43
18AD-2004968.2711.57
49AD-2008168.7515.03
55AD-2008769.3514.25
31AD-2006269.7110.58
52AD-2008471.4217.10
A472.298.52
67AD-2010073.6815.34
27AD-2005874.1912.01
36AD-2006774.3217.93
33AD-2006475.2314.71
72AD-2010775.8810.61
28AD-2005976.9413.68
A176.9414.61
71AD-2010677.0812.79
25AD-2005679.1112.52
8AD-2003980.2110.01
39AD-2007080.4914.56
88AD-2009880.6311.15
40AD-2007180.7716.38
62AD-2009481.7516.23
86AD-2012184.499.13
17AD-2004884.6416.94
12AD-2004386.8714.40
22AD-2005387.9314.30
11AD-2004288.2313.27
37AD-2006891.6617.18
32AD-2006391.9814.78
8794.5610.00
9AD-2004096.8912.28
6AD-2003797.9016.58
2AD-20033100.4817.62
3AD-20034100.8312.65
1AD-20032105.8419.01
7AD-20038114.6216.88
5AD-20036115.4214.21
4AD-20035123.4911.58
10AD-20041135.0565.85
TABLE 12 — OMM1.3 cells (10 nM) single dose GNAQ in vitro screen OMM1.3 (10 nM conc.)
Sample NameDuplex Name% Target RemainingSt. Dev error
38AD-2006950.046.45
68AD-2010150.307.35
53AD-2008551.0911.53
66AD-2009951.458.97
64AD-2009651.728.35
43AD-2007453.176.93
21AD-2005253.548.56
51AD-2008353.5410.85
58AD-2009053.829.62
45AD-2007754.298.36
26AD-2005754.7612.81
56AD-2008854.8612.18
65AD-2009754.867.64
89AD-2010355.249.10
63AD-2009555.339.42
23AD-2005455.537.94
19AD-2005055.538.95
57AD-2008955.8210.84
91AD-2019356.0110.65
16AD-2004756.208.85
20AD-2005156.509.35
47AD-2007956.507.15
15AD-2004656.697.92
44AD-2007657.098.01
59AD-2009157.099.56
8AD-2003957.297.18
61AD-2009357.5810.14
14AD-2004557.7810.19
85AD-2012057.789.98
54AD-2008657.889.77
11AD-2004258.9011.84
13AD-2004459.4111.72
48AD-2008060.559.45
41AD-2007260.876.66
A261.089.29
12AD-2004361.7213.93
35AD-2006661.7211.27
6AD-2003761.729.69
69AD-2010261.9310.90
34AD-2006562.1512.75
60AD-2009262.2510.76
50AD-2008262.8011.11
3AD-2003463.127.93
10AD-2004163.899.55
18AD-2004964.009.43
30AD-2006164.1210.78
29AD-2006064.2312.25
70AD-2010465.3510.65
52AD-2008467.5414.15
55AD-2008767.7712.89
9067.7710.53
24AD-2005568.3610.68
9AD-2004068.6011.16
5AD-2003669.0810.37
93AD-2019569.4410.54
2AD-2003370.0412.33
31AD-2006271.0211.73
49AD-2008171.0211.45
39AD-2007071.519.18
27AD-2005871.8811.58
67AD-2010072.019.95
94AD-2019672.2615.50
A172.898.79
33AD-2006473.3913.32
A473.6512.42
A374.5514.37
25AD-2005674.8112.70
28AD-2005974.9414.91
40AD-2007175.2010.84
36AD-2006776.6412.54
71AD-2010676.6410.67
4AD-2003576.9110.25
22AD-2005378.8015.37
86AD-2012179.4810.26
7AD-2003879.6210.32
17AD-2004880.5913.99
88AD-2009881.0112.34
72AD-2010782.0016.19
62AD-2009482.4314.56
32AD-2006384.6012.39
37AD-2006893.2216.05
8794.5214.29
1AD-20032115.8715.00
TABLE 13 — UMEL 202 cells (10 nM) single dose GNAQ in vitro screen UMEL 202 cells (10 nm Conc.
Sample NameDuplex Name% Target RemainingSt. Dev error
51AD-2008317.873.17
85AD-2012018.374.48
45AD-2007718.765.42
68AD-2010118.823.16
26AD-2005719.423.43
64AD-2009619.663.25
15AD-2004619.834.71
58AD-2009019.904.30
57AD-2008920.744.31
53AD-2008521.554.68
89AD-2010322.154.48
63AD-2009522.312.70
21AD-2005222.464.02
11AD-2004222.662.36
59AD-2009122.784.06
20AD-2005122.863.46
38AD-2006923.345.47
16AD-2004723.583.90
43AD-2007423.625.71
19AD-2005023.874.41
8AD-2003923.912.96
14AD-2004524.334.08
47AD-2007925.105.85
50AD-2008225.274.51
3AD-2003425.494.73
61AD-2009325.544.75
60AD-2009225.764.91
56AD-2008825.943.59
66AD-2009926.034.28
65AD-2009726.304.82
41AD-2007227.096.80
13AD-2004427.615.71
2AD-2003327.703.68
91AD-2019327.904.64
29AD-2006027.995.33
44AD-2007628.047.95
A228.296.73
54AD-2008628.785.43
69AD-2010229.184.79
48AD-2008029.288.11
5AD-2003630.904.82
A330.956.03
18AD-2004931.064.57
6AD-2003731.173.46
30AD-2006131.496.96
35AD-2006631.7139.01
34AD-2006534.057.29
9034.115.07
94AD-2019634.176.48
23AD-2005434.465.09
12AD-2004334.702.93
10AD-2004134.766.00
55AD-2008736.558.21
31AD-2006236.817.00
49AD-2008137.067.58
25AD-2005639.049.55
70AD-2010439.596.12
52AD-2008439.936.61
A440.427.46
93AD-2019541.997.10
40AD-2007142.288.86
27AD-2005843.409.27
4AD-2003547.006.36
24AD-2005547.086.37
A148.6510.76
9AD-2004050.468.04
28AD-2005950.6312.97
39AD-2007051.439.23
36AD-2006752.4210.11
33AD-2006452.7810.02
17AD-2004854.368.74
88AD-2009855.509.72
86AD-2012157.168.59
67AD-2010058.878.34
22AD-2005365.3210.91
62AD-2009468.1010.87
7AD-2003872.489.86
37AD-2006874.0017.25
71AD-2010682.3911.32
32AD-2006383.1117.34
72AD-2010789.3911.20
8799.1818.11
1AD-20032119.3318.54
TABLE 14 — UMEL 202 cells (10 nM) single dose GNAQ in vitro screen UMEL202 cells (10 nM)
Sample NameDuplex Name% Target RemainingSt. Dev error
85AD-2012016.281.84
26AD-2005718.413.50
68AD-2010118.733.64
45AD-2007719.094.41
64AD-2009619.334.19
21AD-2005221.083.11
51AD-2008321.224.27
58AD-2009022.364.62
63AD-2009522.553.04
20AD-2005123.222.94
53AD-2008523.434.97
57AD-2008923.434.55
8AD-2003924.003.73
89AD-2010324.255.69
15AD-2004624.303.82
38AD-2006925.025.88
19AD-2005025.113.28
11AD-2004225.203.93
16AD-2004725.203.98
59AD-2009125.415.04
43AD-2007425.506.00
61AD-2009325.504.07
66AD-2009925.683.88
65AD-2009725.902.90
56AD-2008825.954.67
47AD-2007926.315.00
41AD-2007226.965.21
69AD-2010227.193.81
14AD-2004527.725.20
13AD-2004428.105.06
50AD-2008228.255.67
54AD-2008628.354.75
60AD-2009228.844.72
29AD-2006029.045.29
2AD-2003329.244.55
91AD-2019329.307.31
35AD-2006629.406.42
3AD-2003429.455.51
A230.705.81
48AD-2008030.867.14
44AD-2007631.077.63
12AD-2004331.297.00
30AD-2006131.405.57
94AD-2019632.228.75
A332.737.68
18AD-2004933.366.21
5AD-2003634.124.63
34AD-2006534.604.89
6AD-2003734.665.71
70AD-2010435.325.17
23AD-2005435.395.08
9036.198.71
10AD-2004136.825.22
A436.8911.72
93AD-2019537.739.95
31AD-2006237.937.86
25AD-2005640.518.37
55AD-2008740.6510.00
52AD-2008441.727.24
24AD-2005543.266.08
49AD-2008143.3413.40
27AD-2005845.577.25
A145.898.52
4AD-2003546.138.13
28AD-2005948.258.52
36AD-2006748.8413.01
40AD-2007148.939.64
88AD-2009850.3012.25
33AD-2006450.487.61
9AD-2004050.746.96
67AD-2010050.929.41
39AD-2007053.3614.44
17AD-2004853.456.78
22AD-2005366.6112.90
86AD-2012166.8416.28
62AD-2009467.8911.19
7AD-2003870.538.81
71AD-2010681.4414.31
32AD-2006383.2912.02
72AD-2010785.0414.05
87100.2629.22
37AD-20068108.5854.53
1AD-20032124.6215.51
TABLE 15 — IC50 in A549 cells
RankDuplex NameIC50 in [nM]IC50 in [pM]
1AD-200570.00020.2
2AD-200690.00262.6
3AD-200510.00313.1
4AD-200520.00323.2
5AD-200990.00333.3
6AD-200450.00525.2
7AD-201930.00646.4
8AD-200920.00949.4
9AD-201160.00989.8
10AD-200390.013713.7
11AD-200420.017217.2
TABLE 16 — IC50 in MEL 202 cells
RankDuplex Name/(Sample Name)IC50 in [nM]
1AD-20057 (26)0.001
2AD-20069 (38)0.002
3AD-20051 (20)0.002
4AD-20052 (21)0.003
5AD-20045 (14)0.003
6AD-20193 (91)0.003
7AD-20092 (60)0.003
8AD-20099 (66)0.004
9AD-20101 (68)0.005
10AD-20116 (81)0.006
11AD-20039 (8)0.006
12AD-20103 (89)0.007
13AD-20085 (53)0.008
14AD-20113 (78)0.010
15AD-20083 (51)0.010
16AD-20096 (64)0.010
17AD-20042 (11)0.011
18AD-20090 (58)0.023
19AD-20119 (84)0.024
20AD-20120 (85)0.037
21AD-20109 (74)0.047
22AD-20077 (45)0.084
TABLE 17 — IC50 in OMM1.3 cells
RankDuplex Name (Sample)IC50 in [nM]
1AD-20057 (26)0.0043
2AD-20069 (38)0.0115
3AD-20052 (21)0.0183
4AD-20051 (20)0.0197
5AD-20099 (66)0.0270
6AD-20092 (60)0.0280
7AD-20193 (91)0.0335
8AD-20101 (68)0.0531
9AD-20045 (14)0.0538
10AD-20113 (78)0.0625
11AD-20039 (8)0.0693
12AD-20103 (89)0.0820
13AD-20085 (53)0.0842
14AD-20116 (81)0.1280
15AD-20083 (51)0.1653
16AD-20042 (11)0.2470
17AD-20090 (58)0.2593
18AD-20096 (64)0.3006
19AD-20120 (85)0.6189
20AD-20119 (84)1.2276
21AD-20109 (74)1.2558
22AD-20077 (45)2.0044
TABLE 18A — In vitro dose response in 3 cell lines Duplex
name1 nM0.1 nM0.01 nM0.001 nM
OMM-1.3
AD-200390.380.460.740.73
AD-200450.420.520.600.79
AD-200510.340.460.631.18
AD-200520.360.370.530.61
AD-200570.320.360.430.59
AD-200630.630.690.990.74
AD-200690.370.350.430.69
AD-200920.420.510.710.75
AD-200990.350.460.520.63
AD-201010.390.570.600.69
AD-201110.640.680.650.70
AD-201130.370.510.710.92
AD-201160.560.580.660.75
AD-201930.450.500.640.75
AD-19551.121.170.830.92
MEL-202
AD-200390.350.440.630.83
AD-200450.300.360.530.55
AD-200510.220.370.670.88
AD-200520.330.390.660.85
AD-200570.280.290.390.77
AD-200630.930.870.950.97
AD-200690.350.390.390.75
AD-200920.370.490.930.98
AD-200990.280.330.610.96
AD-201010.380.460.830.92
AD-201110.670.810.910.98
AD-201130.310.480.820.99
AD-201160.330.340.720.92
AD-201930.320.440.650.87
AD-19551.110.851.110.95
MEL-285
AD-200390.290.470.951.09
AD-200450.390.420.690.86
AD-200510.340.340.730.90
AD-200520.300.531.171.22
AD-200570.370.340.540.86
AD-200630.991.051.521.37
AD-200690.270.330.550.80
AD-200920.390.580.780.82
AD-200990.280.400.921.10
AD-201010.350.570.821.05
AD-201110.750.790.780.73
AD-201130.320.530.921.18
AD-201160.550.511.170.91
AD-201930.420.470.790.95
AD-19550.931.010.931.15
TABLE 18B — IC 50 (pM) in 3 cell lines
duplex numberMEL202OMM1.3A549
AD-200570.74.30.2
AD-200691.811.52.6
AD-200512.519.73.1
AD-200522.618.33.2
AD-200452.853.85.2
AD-201933.233.56.4
AD-200923.5289.4
AD-200993.6273.3
AD-201014.953.1
AD-201165.51289.8
AD-201139.562.5
AD-200396.169.313.7
TABLE 19 — Immunostimulatory activity
Duplex name% IFN-α/AD-5048% TNF-α/AD-5048
AD-2003900
AD-2004500
AD-2005100
AD-2005200
AD-2005700
AD-2006900
AD-2009200
AD-2009900
AD-2010100
AD-2011300
AD-2011600
AD-2019300
TABLE 20 — Cell viability after treatment with siRNA
Day 3Day 5Day 7
Conc. (in nM)1 nM0.1 nM0.01 nM0.001 nM1 nM0.1 nM0.01 nM0.001 nM1 nM0.1 nM0.01 nM0.001 nM
OMM-1.3AD-200390.950.961.181.2710.460.480.790.9410.250.521.181.32
AD-200450.990.941.071.200.530.530.701.030.420.440.711.16
AD-200510.780.901.010.630.350.420.650.940.230.350.741.15
AD-200520.820.901.171.380.410.470.791.020.310.451.061.24
AD-200570.860.880.901.310.360.390.490.830.220.310.551.03
AD-200631.261.261.100.531.271.061.040.931.110.951.001.06
AD-200690.790.720.961.160.350.390.460.860.170.210.580.89
AD-200920.680.931.111.150.360.580.850.910.270.631.080.96
AD-200990.510.720.951.070.180.370.580.880.080.220.560.86
AD-201010.720.761.341.530.330.400.781.000.180.390.980.95
AD-201111.251.151.301.320.891.100.871.000.930.950.980.95
AD-201130.560.731.021.030.220.440.750.800.120.350.880.82
AD-201160.821.231.641.880.410.700.920.980.170.510.750.73
AD-201931.220.841.311.670.460.530.660.800.160.300.480.74
AD-121150.600.651.031.000.190.260.620.930.080.260.630.61
PLK0.470.800.651.670.120.540.741.000.060.640.880.78
AD-192000.620.850.721.550.640.780.920.810.640.830.810.87
AD-19551.001.001.001.001.001.001.001.001.001.001.001.00
MEL-202AD-200391.210.981.020.930.720.560.791.000.780.660.750.88
AD-200450.950.900.950.850.470.380.610.920.570.360.470.80
AD-200510.700.780.800.380.620.360.770.820.820.420.620.80
AD-200520.981.021.060.930.460.420.671.020.330.550.951.03
AD-200570.610.910.860.850.300.270.470.860.310.340.530.88
AD-200630.911.001.020.370.740.811.010.911.541.321.081.04
AD-200690.771.030.911.000.280.440.430.640.340.370.490.79
AD-200920.870.880.950.870.250.440.700.800.260.730.971.11
AD-200990.800.690.750.410.240.360.530.680.130.260.661.16
AD-201010.720.920.800.870.160.480.570.730.170.511.210.92
AD-201111.180.900.750.840.670.830.740.801.301.371.251.03
AD-201130.630.550.740.360.180.310.660.680.150.371.001.05
AD-201160.420.590.620.930.410.510.730.900.290.380.710.77
AD-201930.390.530.530.940.360.490.700.760.290.320.590.80
AD-121150.220.220.300.500.090.120.420.780.030.040.080.68
PLK0.230.270.370.630.100.160.560.650.030.070.971.19
AD-192000.370.520.490.560.290.750.760.740.441.151.040.85
AD-1955111111111111
MEL-285AD-200390.581.371.231.231.071.251.131.090.821.060.960.93
AD-200451.161.311.151.051.101.101.121.240.840.850.970.90
AD-200511.141.200.970.981.271.161.061.030.840.990.890.97
AD-200520.631.401.261.041.031.401.421.210.921.021.130.98
AD-200571.141.171.201.041.001.041.261.350.980.981.031.00
AD-200631.101.140.880.891.331.140.940.951.161.050.870.91
AD-200690.461.091.080.961.171.201.031.041.291.171.010.99
AD-200921.021.141.150.961.021.111.031.051.061.111.041.02
AD-200990.891.100.950.950.480.920.961.000.540.910.891.05
AD-201010.701.161.121.040.471.121.411.420.661.011.221.03
AD-201111.121.051.131.011.211.491.301.291.041.181.041.03
AD-201130.810.971.021.030.410.850.810.970.310.760.851.01
AD-201160.500.861.071.011.030.981.031.010.990.911.010.94
AD-201930.910.881.030.940.580.861.251.240.720.801.091.03
AD-121150.340.350.810.430.100.120.541.020.070.120.821.00
PLK0.230.650.460.970.310.541.401.310.180.721.381.17
AD-192000.530.810.680.940.530.771.221.320.460.971.221.15
AD-19551.001.001.001.001.001.001.001.001.001.001.001.00

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IPC · International Patent Classification
Section A — Human necessities
  • A61K48/00
  • A61K31/713
Section C — Chemistry; metallurgy
  • C12N15/113

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