USPatent applicationPatented

RNA agents for GST-Pi gene modulation

Granted 14 Aug 2018 · 2 office actions

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Abstract

This invention provides compounds, compositions and methods for modulating the expression of human GST-π using RNA interference. The RNA interference molecules can be used in methods for preventing or treating diseases such as malignant tumor. A nucleic acid molecule can have a) a polynucleotide sense strand and a polynucleotide antisense strand; b) each strand of the molecule being from 15 to 30 nucleotides in length; c) a contiguous region of from 15 to 30 nucleotides of the antisense strand being complementary to a sequence of an mRNA encoding GST-π; and d) at least a portion of the sense strand can be complementary to at least a portion of the antisense strand, and the molecule has a duplex region of from 15 to 30 nucleotides in length.

Description

22 parts
›SEQUENCE LISTING

This application includes a Sequence Listing submitted electronically as an ASCII file created on Dec. 23, 2015, named ND5123202US_SL.txt, which is 443,134 bytes in size, and is hereby incorporated by reference in its entirety.

›BACKGROUND OF THE INVENTION

Various human cancer tissues have been found to correlate with the appearance of mutated KRAS gene. In some cases, the tissues also present an elevated level of Glutathione S-Tranferase Pi (GST-π) expression. (Miyanishi et al., Gastroenterology, 2001, Vol. 121:865-874, Abstract) For example, elevated serum GST-π levels were observed in patients with various gastrointestinal malignancies. (Niitsu et al., Cancer, 1989, Vol. 63, No. 2, pp. 317-323, Abstract)

GST-π is a member of a GST family of enzymes that play a role in detoxification by catalyzing the conjugation of hydrophobic and electrophilic compounds with reduced glutathione. GST-π expression can be reduced in vitro with a siRNA. (Niitsu et al., US 2014/0315975 A1)

Therapeutics for inhibition of GST-π expression will require highly potent siRNA sequences and structures.

What is needed are siRNA sequences, compounds and structures for inhibition of GST-π expression.

›BRIEF SUMMARY

This invention relates to the fields of biopharmaceuticals and therapeutics composed of nucleic acid based molecules. More particularly, this invention relates to compounds and compositions utilizing RNA interference (RNAi) for modulating the expression of human GST-π.

This invention relates to compounds, compositions and methods for modulating the expression of human GST-π using RNA interference.

In some embodiments, this invention provides molecules for RNA interference gene silencing of GST-π.

In further embodiments, the structures, molecules and compositions of this invention can be used in methods for preventing or treating diseases, or ameliorating symptoms of conditions or disorders associated with GST-π, including malignant tumor.

Embodiments of this invention include the following:

A nucleic acid molecule, wherein:

a) the molecule has a polynucleotide sense strand and a polynucleotide antisense strand;

b) each strand of the molecule is from 15 to 30 nucleotides in length;

c) a contiguous region of from 15 to 30 nucleotides of the antisense strand is complementary to a sequence of an mRNA encoding GST-π;

d) at least a portion of the sense strand is complementary to at least a portion of the antisense strand, and the molecule has a duplex region of from 15 to 30 nucleotides in length.

In some embodiments, the nucleic acid molecule can have contiguous region of from 15 to 30 nucleotides of the antisense strand that is complementary to a sequence of an mRNA encoding GST-π is located in the duplex region of the molecule.

In additional embodiments, the nucleic acid molecule can have a contiguous region of from 15 to 30 nucleotides of the antisense strand that is complementary to a sequence of an mRNA encoding GST-π.

Compounds of this invention can have a sequence of an mRNA encoding GST-π that is selected from the group consisting of 5′UTR positions 1 to 249 of SEQ ID NO:1, CDS positions 250 to 882 of SEQ ID NO:1, and 3′UTR positions 883 to 986 of SEQ ID NO:1.

In certain embodiments, each strand of the nucleic acid molecule can be from 18 to 22 nucleotides in length. The duplex region of the nucleic acid molecule can be 19 nucleotides in length.

In alternative forms, the nucleic acid molecule can have a polynucleotide sense strand and a polynucleotide antisense strand that are connected as a single strand, and form a duplex region connected at one end by a loop.

Some embodiments of a nucleic acid molecule of this disclosure can have a blunt end. In certain embodiments, a nucleic acid molecule can have one or more 3′ overhangs.

This invention provides a range of nucleic acid molecules that are RNAi molecules active for gene silencing. The inventive nucleic acid molecules can be a dsRNA, a siRNA, a micro-RNA, or a shRNA active for gene silencing, as well as a DNA-directed RNA (ddRNA), Piwi-interacting RNA (piRNA), or a repeat associated siRNA (rasiRNA). The nucleic acid molecules can be active for inhibiting expression of GST-π.

Embodiments of this invention further provide nucleic acid molecules having an IC50 for knockdown of GST-π of less than 100 pM.

This invention further contemplates compositions containing one or more of the inventive nucleic acid molecules, along with a pharmaceutically acceptable carrier. In certain embodiments, the carrier can be a lipid molecule or liposome.

The compounds and compositions of this invention are useful in methods for preventing or treating a GST-π associated disease, by administering a compound or composition to a subject in need.

The methods of this invention can utilize the inventive compounds for preventing or treating malignant tumor. The malignant tumor can be presented in various diseases, for example, cancers associated with GST-π expression, cancers caused by cells expressing mutated KRAS, sarcomas, fibrosarcoma, malignant fibrous histiocytoma, liposarcoma, rhabdomyosarcoma, leiomyosarcoma, angiosarcoma, Kaposi's sarcoma, lymphangiosarcoma, synovial sarcoma, chondrosarcoma, osteosarcoma, carcinomas, brain tumor, head and neck cancer, breast cancer, lung cancer, esophageal cancer, stomach cancer, duodenal cancer, appendix cancer, colorectal cancer, rectal cancer, liver cancer, pancreatic cancer, gallbladder cancer, bile duct cancer, anus cancer, kidney cancer, urethral cancer, urinary bladder cancer, prostate cancer, testicular cancer, uterine cancer, ovary cancer, skin cancer, leukemia, malignant lymphoma, epithelial malignant tumors, and non-epithelial malignant tumors.

›BRIEF DESCRIPTION OF THE DRAWINGS

FIG. 1 shows SEQ ID NO: 1, which is the nucleic acid sequence of target human glutathione S-transferase pi (human GST-π) mRNA, disclosed in GenBank accession number NM_000852.3 (hGSTP1), which is 986 nucleotides in length.

FIG. 2 shows in vivo knockdown efficacy for GST-π siRNA. Dose dependent knockdown of GST-π mRNA was observed in vivo with siRNA targeted to GST-π, as shown in FIG. 2 .

FIG. 3 shows inhibition of proliferation by GST-π siRNA. Dose-dependent inhibition of proliferation was observed in an A549 cell line in vitro with siRNA targeted to GST-π, as shown in FIG. 3 .

FIG. 4 shows tumor inhibition efficacy for GST-π siRNA. A pancreatic cancer xenograft model was utilized with a relatively low dose at 0.75 mg/kg of siRNA targeted to GST-π. The GST-π siRNA demonstrated significant tumor inhibition efficacy.

›DETAILED DESCRIPTION OF THE INVENTION · 1 of 5

This invention relates to compounds, compositions and methods for nucleic acid based therapeutics for modulating expression of GST-π.

In some embodiments, this invention provides molecules active in RNA interference, as well as structures and compositions that can silence expression of GST-π.

The structures and compositions of this disclosure can be used in preventing or treating various diseases such as malignant tumor.

In further embodiments, this invention provides compositions for delivery and uptake of one or more therapeutic RNAi molecules of this invention, as well as methods of use thereof. The RNA-based compositions of this invention can be used in methods for preventing or treating malignant tumors, such as cancers.

Therapeutic compositions of this invention include nucleic acid molecules that are active in RNA interference. The therapeutic nucleic acid molecules can be targeted to GSTP1 (GST-π) for gene silencing.

In various embodiments, this invention provides a range of molecules that can be active as a small interfering RNA (siRNA), and can regulate or silence GST-π gene expression.

The siRNAs of this invention can be used for preventing or treating malignant tumors.

Embodiments of this invention further provide a vehicle, formulation, or lipid nanoparticle formulation for delivery of the inventive siRNAs to subjects in need of preventing or treating a malignant tumor. This invention further contemplates methods for administering siRNAs as therapeutics to mammals.

The therapeutic molecules and compositions of this invention can be used for RNA interference directed to preventing or treating a GST-π associated disease, by administering a compound or composition to a subject in need.

The methods of this invention can utilize the inventive compounds for preventing or treating malignant tumor. The malignant tumor can be presented in various diseases, for example, cancers that highly expressing GST-π, cancers caused by cells expressing mutated KRAS, sarcomas, fibrosarcoma, malignant fibrous histiocytoma, liposarcoma, rhabdomyosarcoma, leiomyosarcoma, angiosarcoma, Kaposi's sarcoma, lymphangiosarcoma, synovial sarcoma, chondrosarcoma, osteosarcoma, carcinomas, brain tumor, head and neck cancer, breast cancer, lung cancer, esophageal cancer, stomach cancer, duodenal cancer, colorectal cancer, liver cancer, pancreatic cancer, gallbladder cancer, bile duct cancer, kidney cancer, urethral cancer, bladder cancer, prostate cancer, testicular cancer, uterine cancer, ovary cancer, skin cancer, leukemia, malignant lymphoma, epithelial malignant tumors, and non-epithelial malignant tumors.

In certain embodiments, a combination of therapeutic molecules of this invention can be used for silencing or inhibiting GST-π gene expression.

This invention provides a range of RNAi molecules, where each molecule has a polynucleotide sense strand and a polynucleotide antisense strand; each strand of the molecule is from 15 to 30 nucleotides in length; a contiguous region of from 15 to 30 nucleotides of the antisense strand is complementary to a sequence of an mRNA encoding GST-π; and at least a portion of the sense strand is complementary to at least a portion of the antisense strand, and the molecule has a duplex region of from 15 to 30 nucleotides in length.

A RNAi molecule of this invention can have a contiguous region of from 15 to 30 nucleotides of the antisense strand that is complementary to a sequence of an mRNA encoding GST-π, which is located in the duplex region of the molecule.

In some embodiments, a RNAi molecule can have a contiguous region of from 15 to 30 nucleotides of the antisense strand that is complementary to a sequence of an mRNA encoding GST-π.

Embodiments of this invention may further provide methods for preventing, treating or ameliorating one or more symptoms of malignant tumor, or reducing the risk of developing malignant tumor, or delaying the onset of malignant tumor in a mammal in need thereof.

GST-π and RNAi Molecules

FIG. 1 shows the nucleic acid sequence of an example target human glutathione S-transferase pi (human GST-π) mRNA, which is disclosed in GenBank accession number NM_000852.3 (hGSTP1), and is 986 nucleotides in length (SEQ ID NO: 1).

One of ordinary skill in the art would understand that a reported sequence may change over time and to incorporate any changes needed in the nucleic acid molecules herein accordingly.

Embodiments of this invention can provide compositions and methods for gene silencing of GST-π expression using small nucleic acid molecules. Examples of nucleic acid molecules include molecules active in RNA interference (RNAi molecules), short interfering RNA (siRNA), double-stranded RNA (dsRNA), micro-RNA (miRNA), and short hairpin RNA (shRNA) molecules, as well as DNA-directed RNAs (ddRNA), Piwi-interacting RNAs (piRNA), and repeat associated siRNAs (rasiRNA). Such molecules are capable of mediating RNA interference against GST-π gene expression.

The composition and methods disclosed herein can also be used in treating various kinds of malignant tumors in a subject.

The nucleic acid molecules and methods of this invention may be used to down regulate the expression of genes that encode GST-π.

The compositions and methods of this invention can include one or more nucleic acid molecules, which, independently or in combination, can modulate or regulate the expression of GST-π protein and/or genes encoding GST-π proteins, proteins and/or genes encoding GST-π associated with the maintenance and/or development of diseases, conditions or disorders associated with GST-π, such as malignant tumor.

The compositions and methods of this invention are described with reference to exemplary sequences of GST-π. A person of ordinary skill in the art would understand that various aspects and embodiments of the invention are directed to any related GST-π genes, sequences, or variants, such as homolog genes and transcript variants, and polymorphisms, including single nucleotide polymorphism (SNP) associated with any GST-π genes.

›DETAILED DESCRIPTION OF THE INVENTION · 2 of 5

In some embodiments, the compositions and methods of this invention can provide a double-stranded short interfering nucleic acid (siRNA) molecule that downregulates the expression of a GST-π gene, for example human GST-π.

A RNAi molecule of this invention can be targeted to GST-π and any homologous sequences, for example, using complementary sequences or by incorporating non-canonical base pairs, for example, mismatches and/or wobble base pairs, that can provide additional target sequences.

In instances where mismatches are identified, non-canonical base pairs, for example, mismatches and/or wobble bases can be used to generate nucleic acid molecules that target more than one gene sequence.

For example, non-canonical base pairs such as UU and CC base pairs can be used to generate nucleic acid molecules that are capable of targeting sequences for differing GST-π targets that share sequence homology. Thus, a RNAi molecule can be targeted to a nucleotide sequence that is conserved between homologous genes, and a single RNAi molecule can be used to inhibit expression of more than one gene.

In some aspects, the compositions and methods of this invention include RNAi molecules that are active against GST-π mRNA, where the RNAi molecule includes a sequence complementary to any mRNA encoding a GST-π sequence.

In some embodiments, a RNAi molecule of this disclosure can have activity against GST-π RNA, where the RNAi molecule includes a sequence complementary to an RNA having a variant GST-π encoding sequence, for example, a mutant GST-π gene known in the art to be associated with malignant tumor.

In further embodiments, a RNAi molecule of this invention can include a nucleotide sequence that can interact with a nucleotide sequence of a GST-π gene and mediate silencing of GST-π gene expression.

Examples of RNAi molecules of this invention targeted to GST-π mRNA are shown in Tables 1 and 2.

Key for Table 1: Upper case A, G, C and U referred to for ribo-A, ribo-G, ribo-C and ribo-U respectively. The lower case letters a, g, c, t represent 2′-deoxy-A, 2′-deoxy-G, 2′-deoxy-C and thymidine respectively.

Key for Table 2: Upper case A, G, C and U referred to for ribo-A, ribo-G, ribo-C and ribo-U respectively. The lower case letters a, g, c, t represent 2′-deoxy-A, 2′-deoxy-G, 2′-deoxy-C and thymidine respectively.

For example, a siRNA of this invention may have an antisense strand which is SEQ ID NO:1341, and a sense strand which is SEQ ID NO:1276, or chemically modified strands thereof.

For example, a siRNA of this invention may have an antisense strand which is SEQ ID NO:1305, and a sense strand which is SEQ ID NO:1240, or chemically modified strands thereof.

Chemical modifications may comprise a 2′-OMe substituent group on any nucleotide in any position in a strand, as well as other modifications known in the art.

Methods for Modulating GST-π and Treating Malignant Tumor

Embodiments of this invention can provide RNAi molecules that can be used to down regulate or inhibit the expression of GST-π and/or GST-π proteins.

In some embodiments, a RNAi molecule of this invention can be used to down regulate or inhibit the expression of GST-π and/or GST-π proteins arising from GST-π haplotype polymorphisms that may be associated with a disease or condition such as malignant tumor.

Monitoring of GST-π protein or mRNA levels can be used to characterize gene silencing, and to determine the efficacy of compounds and compositions of this invention.

The RNAi molecules of this disclosure can be used individually, or in combination with other siRNAs for modulating the expression of one or more genes.

The RNAi molecules of this disclosure can be used individually, or in combination, or in conjunction with other known drugs for preventing or treating diseases, or ameliorating symptoms of conditions or disorders associated with GST-π, including malignant tumor.

The RNAi molecules of this invention can be used to modulate or inhibit the expression of GST-π in a sequence-specific manner.

The RNAi molecules of this disclosure can include a guide strand for which a series of contiguous nucleotides are at least partially complementary to a GST-π mRNA.

In certain aspects, malignant tumor may be treated by RNA interference using a RNAi molecule of this invention.

Treatment of malignant tumor may be characterized in suitable cell-based models, as well as ex vivo or in vivo animal models.

Treatment of malignant tumor may be characterized by determining the level of GST-π mRNA or the level of GST-π protein in cells of affected tissue.

Treatment of malignant tumor may be characterized by non-invasive medical scanning of an affected organ or tissue.

Embodiments of this invention may include methods for preventing, treating, or ameliorating the symptoms of a GST-π associated disease or condition in a subject in need thereof.

In some embodiments, methods for preventing, treating, or ameliorating the symptoms of malignant tumor in a subject can include administering to the subject a RNAi molecule of this invention to modulate the expression of a GST-π gene in the subject or organism.

In some embodiments, this invention contemplates methods for down regulating the expression of a GST-π gene in a cell or organism, by contacting the cell or organism with a RNAi molecule of this invention.

RNA Interference

RNA interference (RNAi) refers to sequence-specific post-transcriptional gene silencing in animals mediated by short interfering RNAs (siRNAs). See, e.g., Zamore et al., Cell, 2000, Vol. 101, pp. 25-33; Fire et al., Nature, 1998, Vol. 391, pp. 806811; Sharp, Genes & Development, 1999, Vol. 13, pp. 139-141.

An RNAi response in cells can be triggered by a double stranded RNA (dsRNA), although the mechanism is not yet fully understood. Certain dsRNAs in cells can undergo the action of Dicer enzyme, a ribonuclease III enzyme. See, e.g., Zamore et al., Cell, 2000, Vol. 101, pp. 25-33; Hammond et al., Nature, 2000, Vol. 404, pp. 293-296. Dicer can process the dsRNA into shorter pieces of dsRNA, which are siRNAs.

›DETAILED DESCRIPTION OF THE INVENTION · 3 of 5

In general, siRNAs can be from about 21 to about 23 nucleotides in length and include a base pair duplex region about 19 nucleotides in length.

RNAi involves an endonuclease complex known as the RNA induced silencing complex (RISC). An siRNA has an antisense or guide strand which enters the RISC complex and mediates cleavage of a single stranded RNA target having a sequence complementary to the antisense strand of the siRNA duplex. The other strand of the siRNA is the passenger strand. Cleavage of the target RNA takes place in the middle of the region complementary to the antisense strand of the siRNA duplex See, e.g., Elbashir et al., Genes & Development, 2001, Vol. 15, pp. 188-200.

As used herein, the term “sense strand” refers to a nucleotide sequence of a siRNA molecule that is partially or fully complementary to at least a portion of a corresponding antisense strand of the siRNA molecule. The sense strand of a siRNA molecule can include a nucleic acid sequence having homology with a target nucleic acid sequence.

As used herein, the term “antisense strand” refers to a nucleotide sequence of a siRNA molecule that is partially or fully complementary to at least a portion of a target nucleic acid sequence. The antisense strand of a siRNA molecule can include a nucleic acid sequence that is complementary to at least a portion of a corresponding sense strand of the siRNA molecule.

RNAi molecules can down regulate or knock down gene expression by mediating RNA interference in a sequence-specific manner. See, e.g., Zamore et al., Cell, 2000, Vol. 101, pp. 25-33; Elbashir et al., Nature, 2001, Vol. 411, pp. 494-498; Kreutzer et al., WO2000/044895; Zernicka-Goetz et al., WO2001/36646; Fire et al., WO1999/032619; Plaetinck et al., WO2000/01846; Mello et al., WO2001/029058.

As used herein, the terms “inhibit,” “down-regulate,” or “reduce” with respect to gene expression means that the expression of the gene, or the level of mRNA molecules encoding one or more proteins, or the activity of one or more of the encoded proteins is reduced below that observed in the absence of a RNAi molecule or siRNA of this invention. For example, the level of expression, level of mRNA, or level of encoded protein activity may be reduced by at least 1%, or at least 10%, or at least 20%, or at least 50%, or at least 90%, or more from that observed in the absence of a RNAi molecule or siRNA of this invention.

RNAi molecules can also be used to knock down viral gene expression, and therefore affect viral replication.

RNAi molecules can be made from separate polynucleotide strands: a sense strand or passenger strand, and an antisense strand or guide strand. The guide and passenger strands are at least partially complementary. The guide strand and passenger strand can form a duplex region having from about 15 to about 49 base pairs.

In some embodiments, the duplex region of a siRNA can have 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, or 49 base pairs.

In certain embodiments, a RNAi molecule can be active in a RISC complex, with a length of duplex region active for RISC.

In additional embodiments, a RNAi molecule can be active as a Dicer substrate, to be converted to a RNAi molecule that can be active in a RISC complex.

In some aspects, a RNAi molecule can have complementary guide and passenger sequence portions at opposing ends of a long molecule, so that the molecule can form a duplex region with the complementary sequence portions, and the strands are linked at one end of the duplex region by either nucleotide or non-nucleotide linkers. For example, a hairpin arrangement, or a stem and loop arrangement. The linker interactions with the strands can be covalent bonds or non-covalent interactions.

A RNAi molecule of this disclosure may include a nucleotide, non-nucleotide, or mixed nucleotide/non-nucleotide linker that joins the sense region of the nucleic acid to the antisense region of the nucleic acid. A nucleotide linker can be a linker of ≥2 nucleotides in length, for example about 3, 4, 5, 6, 7, 8, 9, or 10 nucleotides in length. The nucleotide linker can be a nucleic acid aptamer. By “aptamer” or “nucleic acid aptamer” as used herein refers to a nucleic acid molecule that binds specifically to a target molecule wherein the nucleic acid molecule has sequence that includes a sequence recognized by the target molecule in its natural setting. Alternately, an aptamer can be a nucleic acid molecule that binds to a target molecule, where the target molecule does not naturally bind to a nucleic acid. For example, the aptamer can be used to bind to a ligand-binding domain of a protein, thereby preventing interaction of the naturally occurring ligand with the protein. See, e.g., Gold et al., Annu Rev Biochem, 1995, Vol. 64, pp. 763-797; Brody et al., J. Biotechnol., 2000, Vol. 74, pp. 5-13; Hermann et al., Science, 2000, Vol. 287, pp. 820-825.

Examples of a non-nucleotide linker include an abasic nucleotide, polyether, polyamine, polyamide, peptide, carbohydrate, lipid, polyhydrocarbon, or other polymeric compounds, for example polyethylene glycols such as those having from 2 to 100 ethylene glycol units. Some examples are described in Seela et al., Nucleic Acids Research, 1987, Vol. 15, pp. 3113-3129; Cload et al., J. Am. Chem. Soc., 1991, Vol. 113, pp. 6324-6326; Jaeschke et al., Tetrahedron Lett., 1993, Vol. 34, pp. 301; Arnold et al., WO1989/002439; Usman et al., WO1995/006731; Dudycz et al., WO1995/011910, and Ferentz et al., J. Am. Chem. Soc., 1991, Vol. 113, pp. 4000-4002.

A RNAi molecule can have one or more overhangs from the duplex region. The overhangs, which are non-base-paired, single strand regions, can be from one to eight nucleotides in length, or longer. An overhang can be a 3′-end overhang, wherein the 3′-end of a strand has a single strand region of from one to eight nucleotides. An overhang can be a 5′-end overhang, wherein the 5′-end of a strand has a single strand region of from one to eight nucleotides.

›DETAILED DESCRIPTION OF THE INVENTION · 4 of 5

The overhangs of a RNAi molecule can have the same length, or can be different lengths.

A RNAi molecule can have one or more blunt ends, in which the duplex region ends with no overhang, and the strands are base paired to the end of the duplex region.

A RNAi molecule of this disclosure can have one or more blunt ends, or can have one or more overhangs, or can have a combination of a blunt end and an overhang end.

A 5′-end of a strand of a RNAi molecule may be in a blunt end, or can be in an overhang. A 3′-end of a strand of a RNAi molecule may be in a blunt end, or can be in an overhang.

A 5′-end of a strand of a RNAi molecule may be in a blunt end, while the 3′-end is in an overhang. A 3′-end of a strand of a RNAi molecule may be in a blunt end, while the 5′-end is in an overhang.

In some embodiments, both ends of a RNAi molecule are blunt ends.

In additional embodiments, both ends of a RNAi molecule have an overhang.

The overhangs at the 5′- and 3′-ends may be of different lengths.

In certain embodiments, a RNAi molecule may have a blunt end where the 5′-end of the antisense strand and the 3′-end of the sense strand do not have any overhanging nucleotides.

In further embodiments, a RNAi molecule may have a blunt end where the 3′-end of the antisense strand and the 5′-end of the sense strand do not have any overhanging nucleotides.

A RNAi molecule may have mismatches in base pairing in the duplex region.

Any nucleotide in an overhang of a RNAi molecule can be a deoxyribonucleotide, or a ribonucleotide.

One or more deoxyribonucleotides may be at the 5′-end, where the 3′-end of the other strand of the RNAi molecule may not have an overhang, or may not have a deoxyribonucleotide overhang.

One or more deoxyribonucleotides may be at the 3′-end, where the 5′-end of the other strand of the RNAi molecule may not have an overhang, or may not have a deoxyribonucleotide overhang.

In some embodiments, one or more, or all of the overhang nucleotides of a RNAi molecule may be 2′-deoxyribonucleotides.

Dicer Substrate RNAi Molecules

In some aspects, a RNAi molecule can be of a length suitable as a Dicer substrate, which can be processed to produce a RISC active RNAi molecule. See, e.g., Rossi et al., US2005/0244858.

A double stranded RNA (dsRNA) that is a Dicer substrate can be of a length sufficient such that it is processed by Dicer to produce an active RNAi molecule, and may further include one or more of the following properties: (i) the Dicer substrate dsRNA can be asymmetric, for example, having a 3′ overhang on the antisense strand, and (ii) the Dicer substrate dsRNA can have a modified 3′ end on the sense strand to direct orientation of Dicer binding and processing of the dsRNA to an active RNAi molecule.

In certain embodiments, the longest strand in a Dicer substrate dsRNA may be 24-30 nucleotides in length.

A Dicer substrate dsRNA can be symmetric or asymmetric.

In some embodiments, a Dicer substrate dsRNA can have a sense strand of 22-28 nucleotides and an antisense strand of 24-30 nucleotides.

In certain embodiments, a Dicer substrate dsRNA may have an overhang on the 3′ end of the antisense strand.

In further embodiments, a Dicer substrate dsRNA may have a sense strand 25 nucleotides in length, and an antisense strand 27 nucleotides in length, with a 2 base 3′-overhang. The overhang may be 1, 2 or 3 nucleotides in length. The sense strand may also have a 5′ phosphate.

An asymmetric Dicer substrate dsRNA may have two deoxyribonucleotides at the 3′-end of the sense strand in place of two of the ribonucleotides.

The sense strand of a Dicer substrate dsRNA may be from about 22 to about 30, or from about 22 to about 28; or from about 24 to about 30; or from about 25 to about 30; or from about 26 to about 30; or from about 26 and 29; or from about 27 to about 28 nucleotides in length.

The sense strand of a Dicer substrate dsRNA may be 22, 23, 24, 25, 26, 27, 28, 29 or 30 nucleotides in length.

In certain embodiments, a Dicer substrate dsRNA may have sense and antisense strands that are at least about 25 nucleotides in length, and no longer than about 30 nucleotides in length.

In certain embodiments, a Dicer substrate dsRNA may have sense and antisense strands that are 26 to 29 nucleotides in length.

In certain embodiments, a Dicer substrate dsRNA may have sense and antisense strands that are 27 nucleotides in length.

The sense and antisense strands of a Dicer substrate dsRNA may be the same length as in being blunt ended, or different lengths as in having overhangs, or may have a blunt end and an overhang.

A Dicer substrate dsRNA may have a duplex region of 19, 20, 21, 22, 23, 24, 25, 26 or 27 nucleotides in length.

The antisense strand of a Dicer substrate dsRNA may have any sequence that anneals to at least a portion of the sequence of the sense strand under biological conditions, such as within the cytoplasm of a eukaryotic cell.

A Dicer substrate with a sense and an antisense strand can be linked by a third structure, such as a linker group or a linker oligonucleotide. The linker connects the two strands of the dsRNA, for example, so that a hairpin is formed upon annealing.

The sense and antisense strands of a Dicer substrate are in general complementary, but may have mismatches in base pairing.

In some embodiments, a Dicer substrate dsRNA can be asymmetric such that the sense strand has 22-28 nucleotides and the antisense strand has 24-30 nucleotides.

A region of one of the strands, particularly the antisense strand, of the Dicer substrate dsRNA may have a sequence length of at least 19 nucleotides, wherein these nucleotides are in the 21-nucleotide region adjacent to the 3′ end of the antisense strand and are sufficiently complementary to a nucleotide sequence of the RNA produced from the target gene.

An antisense strand of a Dicer substrate dsRNA can have from 1 to 9 ribonucleotides on the 5′-end, to give a length of 22-28 nucleotides. When the antisense strand has a length of 21 nucleotides, then 1-7 ribonucleotides, or 2-5 ribonucleotides, or 4 ribonucleotides may be added on the 3′-end. The added ribonucleotides may have any sequence.

›DETAILED DESCRIPTION OF THE INVENTION · 5 of 5

A sense strand of a Dicer substrate dsRNA may have 24-30 nucleotides. The sense strand may be substantially complementary with the antisense strand to anneal to the antisense strand under biological conditions.

Methods of Use of RNAi Molecules

The nucleic acid molecules and RNAi molecules of this invention may be delivered to a cell or tissue by direct application of the molecules, or with the molecules combined with a carrier or a diluent.

The nucleic acid molecules and RNAi molecules of this invention can be delivered or administered to a cell, tissue, organ, or subject by direct application of the molecules with a carrier or diluent, or any other delivery vehicle that acts to assist, promote or facilitate entry into a cell, for example, viral sequences, viral material, or lipid or liposome formulations.

The nucleic acid molecules and RNAi molecules of this invention can be complexed with cationic lipids, packaged within liposomes, or otherwise delivered to target cells or tissues. The nucleic acid or nucleic acid complexes can be locally administered to relevant tissues ex vivo, or in vivo through direct dermal application, transdermal application, or injection.

Delivery systems may include, for example, aqueous and nonaqueous gels, creams, emulsions, microemulsions, liposomes, ointments, aqueous and nonaqueous solutions, lotions, aerosols, hydrocarbon bases and powders, and can contain excipients such as solubilizers and permeation enhancers.

Compositions and methods of this disclosure can include an expression vector that includes a nucleic acid sequence encoding at least one RNAi molecule of this invention in a manner that allows expression of the nucleic acid molecule.

The nucleic acid molecules and RNAi molecules of this invention can be expressed from transcription units inserted into DNA or RNA vectors. Recombinant vectors can be DNA plasmids or viral vectors. Viral vectors can be used that provide for transient expression of nucleic acid molecules.

For example, the vector may contain sequences encoding both strands of a RNAi molecule of a duplex, or a single nucleic acid molecule that is self-complementary and thus forms a RNAi molecule. An expression vector may include a nucleic acid sequence encoding two or more nucleic acid molecules.

A nucleic acid molecule may be expressed within cells from eukaryotic promoters. Those skilled in the art realize that any nucleic acid can be expressed in eukaryotic cells from the appropriate DNA/RNA vector.

In some aspects, a viral construct can be used to introduce an expression construct into a cell, for transcription of a dsRNA construct encoded by the expression construct.

Lipid formulations can be administered to animals by intravenous, intramuscular, or intraperitoneal injection, or orally or by inhalation or other methods as are known in the art.

Pharmaceutically acceptable formulations for administering oligonucleotides are known and can be used.

EXAMPLES
›Examples12
›Example 1

In vitro transfection was performed in an A549 cell line to determine siRNA knockdown efficacy. Dose dependent knockdown for GST-π mRNA was observed with siRNAs as shown in Table 3.

›Example 2

Protocol for in vitro knockdown.

One day before the transfection, plate the cells in a 96-well plate at 2×103 cells per well with 100 μl of DMEM (HyClone Cat. #SH30243.01) containing 10% FBS and culture in a 37° C. incubator containing a humidified atmosphere of 5% CO2 in air. Before transfection, change medium to 90 μl of Opti-MEM I Reduced Serum Medium (Life Technologies Cat. #31985-070) containing 2% FBS. Mix 0.2 μl of Lipofectamine RNAiMax (Life Technologies Cat. #13778-100) with 4.8 μl of Opti-MEM I for 5 minutes at room temperature. Mix 1 μl of siRNA with 4 μl of Opti-MEM I and combine with the LF2000 solution and then mix gently, without vortex. Wait for 5 minutes at room temperature. Incubate the mixture for 10 minutes at room temperature to allow the RNA-RNAiMax complexes to form. Add the 10 μl of RNA-RNAiMax complexes to a well and shake the plate gently by hand. Incubate the cells in a 37° C. incubator containing a humidified atmosphere of 5% CO2 in air for 2 hours. Change medium to fresh-MEM I Reduced Serum Medium (Life Technologies Cat. #31985-070) containing 2% FBS. 24 hours after transfection, wash the cells with ice-cold PBS once. Lyse the cells with 50 μl of Cell-to-Ct Lysis Buffer (Life Technologies Cat. #4391851 C) for 5-30 minutes at room temperature. Add 5 μl of Stop Solution and incubate for 2 minutes at room temperature. Measure mRNA level by RT-qPCR with TAQMAN immediately. Alternatively, the samples can be frozen at −80° C. and assayed at a later time.

›Example 3

FIG. 2 shows in vivo knockdown efficacy for GST-π siRNA. Dose dependent knockdown of GST-π mRNA was observed in vivo with BU02 siRNA targeted to GST-π, as shown in FIG. 2 .

›Example 4

FIG. 3 shows inhibition of cell proliferation by GST-π targeted siRNA. Dose-dependent inhibition of proliferation was observed in an A549 cell line in vitro with siRNA targeted to GST-π, as shown in FIG. 3 .

›Example 5

FIG. 4 shows tumor inhibition efficacy for GST-π siRNA (BU02). A pancreatic cancer xenograft model was utilized with a relatively low dose at 0.75 mg/kg of siRNA targeted to GST-π. The GST-π siRNA demonstrated significant and unexpectedly advantageous tumor inhibition efficacy at day 28.

In this experiment, A549 and PANC-1 cell lines were obtained from ATCC. The cell suspension was mixed well with ice thawed BD matrigel at 1:1 ratio for injection. Each mouse, athymic nude female mice, 6 to 8 weeks, Charles River, was inoculated subcutaneously in the right flank with 0.1 ml of an inoculum of 2×10 6 (A549) or 2.5×10 6 (PANC-1) cells using a 25 G needle and syringe (1 inoculum per mouse). Mice were anesthetized for inoculation. On the day when the established tumors reached approximately 250-350 mm 3 (A549) or 150-250 mm 3 (PANC-1) animals were subjected to bolus injection through tail vein. Animals were sacrificed by overdosed CO 2 and tumors dissected at different time points following the dosing. Tumors were first wet weighted, and then separated into three parts for measurement of GST-π knockdown, biodistribution of siRNA, and biomarker analysis. The samples were snap frozen in liquid nitrogen and stored at −80° C. until ready to be processed for bioanalysis.

›Example 6: Orthotopic A549 Lung Cancer Mouse Model

The GST-π siRNAs of this invention can exhibit profound reduction of orthotopic lung cancer tumors in vivo. In this example, a GST-π siRNA provided gene knockdown potency in vivo when administered in a liposomal formulation to the orthotopic lung cancer tumors in athymic nude mice.

In general, an orthotopic tumor model can exhibit direct clinical relevance for drug efficacy and potency, as well as improved predictive ability. In the orthotopic tumor model, tumor cells are implanted directly into the same kind of organ from which the cells originated.

The anti-tumor efficacy of the siRNA formulation against human lung cancer A549 was evaluated by comparing the final primary tumor weights measured at necropsy for the treatment group and the vehicle control group.

Orthotopic lung cancer tumor inhibition was observed in vivo for a GST-π siRNA based on structure BU2 (SEQ ID NOs:1276 and 1341). An orthotopic A549 lung cancer mouse model was utilized with a relatively low dose at 2 mg/kg of the siRNA targeted to GST-π.

The GST-π siRNA showed significant and unexpectedly advantageous lung tumor inhibition efficacy in this six-week study. After 43 days, the GST-π siRNA showed markedly advantageous tumor inhibition efficacy, with final tumor average weights significantly reduced by 2.8-fold as compared to control.

For this study, male NCr nu/nu mice, 5-6 weeks old, were used. The experimental animals were maintained in a HEPA filtered environment during the experimental period. The siRNA formulations were stored at 4° C. before use, and warmed to room temperature 10 minutes prior to injection in mouse.

For this A549 human lung cancer orthotopic model, on the day of surgical orthotopic implantation (SOI), the stock tumors were harvested from the subcutaneous site of animals bearing A549 tumor xenograft and placed in RPMI-1640 medium. Necrotic tissues were removed and viable tissues were cut into 1.5-2 mm 3 pieces. The animals were anesthetized with isoflurane inhalation and the surgical area was sterilized with iodine and alcohol. A transverse incision approximately 1.5 cm long was made in the left chest wall of the mouse using a pair of surgical scissors. An intercostal incision was made between the third and the fourth rib and the left lung was exposed. One A549 tumor fragment was transplanted to the surface of the lung with an 8-0 surgical suture (nylon). The chest wall was closed with a 6-0 surgical suture (silk). The lung was re-inflated by intrathoracic puncture using a 3 cc syringe with a 25 G×1½ needle to draw out the remaining air in the chest cavity. The chest wall was closed with a 6-0 surgical silk suture. All procedures of the operation described above were performed with a 7× magnification microscope under HEPA filtered laminar flow hoods.

Three days after tumor implantation, the model tumor-bearing mice were randomly divided into groups of ten mice per group. For the group of interest, treatment of the ten mice was initiated three days after tumor implantation.

For the group of interest, the formulation was (Ionizable lipid:cholesterol:DOPE:DOPC:DPPE-PEG-2K:DSPE-PEG-2K), a liposomal composition. The liposomes encapsulated the GST-π siRNA.

For the study endpoint, the experimental mice were sacrificed forty-two days after treatment initiation. Primary tumors were excised and weighed on an electronic balance for subsequent analysis.

For an estimation of compound toxicity, the mean body weight of the mice in the treated and control groups was maintained within the normal range during the entire experimental period. Other symptoms of toxicity were not observed in the mice.

›Example 7

Effect of small interfering RNA (siRNA) targeting GST-π on A549 cell growth in nude mice and angiogenesis on chorioallantoic membrane (CAM) assay. Three pairs of GST-π siRNA-plasmid and non-silencing-plasmid are constructed, and transfected into A549 cells through LIPOFECTAMINE 2000, respectively. The most effective pair of GST-π siRNA-plasmid is selected by ELISA and real-time RT-PCR. A549 cells are transfected with selected GST-π siRNA-plasmid, A549 cells are transfected with non-silencing-plasmid, and A549 cells without transfection are inoculated into nude mice, respectively. Chick embryos are randomly divided into four groups and CAM is treated by different solutions for 48 h: culture media DMEM as negative control group, un-transfected A549 cell culture supernatants as positive control group, GST-π siRNA A549 cell culture supernatants as GST-π siRNA group and non-silencing siRNA A549 cell culture supernatants as non-silencing siRNA group. The CAMs were harvested on day 12 for microscopic assays.

Compared with control group, GST-π siRNA-plasmid induces reduction in GST-π secretion by A549 cells accompanied by reduction in GST-π mRNA. Compared with non-silencing siRNA group, the mean tumor volume of murine xenograft is reduced in GST-π siRNA group; time for xenografts growing to 50 mm 3 is delayed. GST-π contents in xenograft are reduced. In CAM assays, GST-π content is zero in negative group, and in GST-π siRNA group is reduced by 20-70% compared to non-silencing siRNA group or positive group; vessels branch points of CAM in GST-π siRNA group or non-silencing siRNA group or positive group are increased compared with negative group; total vessel length of CAM in GST-π siRNA group is increased compared with negative group, while in non-silencing siRNA group or positive group it is increased. Compared with negative control group, the proliferation of microvessels is increased when cell culture supernatant with GST-π is added in GST-π siRNA group, significant proliferated vessels are observed in non-silencing siRNA group or positive group.

›Example 8

Cell culture. The human non-small cell lung carcinoma cell line, A549 is cultured in F-12K medium (ATCC) supplemented with 10% FBS (FBS, Invitrogen) at 37° C. in a humidified atmosphere with 5% CO 2 . The cells stably expressing control, or GSTπ siRNAs are generated by transducing A549TR cells with the respective lentiviral transduction particles as per manufacturer's instructions (Sigma-Aldrich). Resistant clones are selected in 2.5 μg/mL puromycin (Invivogen) for 12 d, isolated using cloning cylinders, and subsequently expanded and maintained in puromycin-containing medium.

›Example 9

GST-π targeted siRNA results in profound regression of tumor volume in vivo.

A lipid formulation is used to encapsulate and deliver siRNA in nanoparticles to xenografts of human A549 lung cancer cells in scid mice. The xenografts are tested to identify the presence of KRAS mutations or aberrant levels of expression compared to normal cells. When tumors became established (>100 mm 3 ), mice are treated with either GST-π targeted siRNA or Control (non-specific) siRNA every 2 days for 2 weeks. The trial is halted when the control group has to be euthanized.

Results: Treatment with GST-π targeted siRNA prevents tumor expansion and results in dramatic tumor volume reduction.

The tumors that are recovered are sectioned and visualized by TUNEL staining. GST-π targeted siRNA-treated tumors display significantly higher levels of apoptosis. RNA is extracted from the tumors, and real-time PCR is performed to examine specific knockdown of GST-π.

Results: Treatment with GST-π targeted siRNA dramatically reduces expression of GST-π in vivo.

›Example 10

The GST-π siRNAs of this invention exhibited increased serum stability.

A GST-π siRNA was incubated in human serum and detection of remaining siRNA at various time points was done by HPLS/LCMS. The half-life (t 1/2 ) in serum for both the sense strand and antisense strand of the GST-π siRNA (SEQ ID Nos:1276 and 1341) was about 100 minutes.

›Example 11

The GST-π siRNAs of this invention exhibited enhanced stability in formulation in plasma.

A GST-π siRNA was incubated in a formulation in plasma and detection of remaining siRNA was done at various time points. The half-life (t 1/4 ) in plasma of a formulation of GST-π siRNA (SEQ ID Nos:1276 and 1341) was significantly longer than 100 hours.

The GST-π siRNA was prepared in a liposomal formulation having the composition (Ionizing lipid:cholesterol:DOPE:DOPC:DPPE-PEG-2K) (25:30:20:20:5). The z-average size for the liposomal nanoparticles was 40.0 nm, and the siRNA was 91% encapsulated.

The formulation was incubated in 50% human serum in PBS for 40 min, 1.5 h, 3 h, 24 h, and 96 h. The amount of the GST-π siRNA was determined by an ELISA-based assay.

›Example 12

The GST-π siRNAs of this invention can exhibit profound reduction of cancer xenograft tumors in vivo. The GST-π siRNAs can provide gene knockdown potency in vivo when administered in a liposomal formulation to the cancer xenograft tumors.

Tumor inhibition efficacy was observed for a GST-π siRNA (SEQ ID NOs:1276 and 1341). Dose dependent knockdown of GST-π mRNA was observed in vivo with the siRNA targeted to GST-π. A cancer xenograft model was utilized with a siRNA targeted to GST-π.

The GST-π siRNA showed significant and unexpectedly advantageous tumor inhibition efficacy within a few days after administration. Treatment with a GST-π siRNA resulted in significant reduction of GST-π mRNA expression 4 days after injection in a lipid formulation. At the higher dose of 4 mg/kg, significant reduction of about 40% was detected 24 hours after injection.

The GST-π siRNA was administered in a single injection of 10 mL/kg of a liposomal formulation having the composition (Ionizable lipid:Cholesterol:DOPE:DOPC:DPPE-PEG-2K) (25:30:20:20:5).

For the cancer xenograft model, an A549 cell line was obtained from ATCC. The cells were maintained in RPMI-1640 supplemented with 10% Fetal Bovine Serum and 100 U/ml penicillin and 100 μg/ml streptomycin. Cells were split 48 hrs before inoculation so that cells were in log phase growth when harvested. Cells were lightly trypsinized with trypsin-EDTA and harvested from tissue culture. The number of viable cells was counted and determined in a hemocytometer in the presence of trypan blue (only viable cells are counted). The cells were resuspended to a concentration of 4×10 7 /ml in RPMI media without serum. Then the cell suspension was mixed well with ice thawed BD matrigel at 1:1 ratio for injection.

Mice were Charles River Laboratory Athymic Nude (nu/nu) Female Mice, immuno-compromised, 6-8 weeks old, 3 mice per group.

For tumor model preparation, each mouse was inoculated subcutaneously in the right flank with 0.1 ml an inoculum of 2×10 6 of A549 cells using a 25 G needle and syringe, one inoculum per mouse. Mice were not anesthetized for inoculation.

For tumor volume measurements and randomization, tumor size was measured to the nearest 0.1 mm. Tumor volumes were calculated using the formula: Tumor volume=length×width 2 /2. Tumor volumes were monitored twice a week. Once the established tumors reached approximately 350-600 mm 3 , the mice were assigned into groups with varied time points. On the same day, test articles were administered according to the dosing regimen.

For dosage administration, on the day when the established tumors reached approximately 350-600 mm 3 , the test articles were taken out from 4° C. fridge. Before being applied to syringes, the bottle containing formulation was reverted by hand for a few times to make a homogeneous solution.

For body weight, mice were weighed to the nearest 0.1 g. Body weights were monitored and recorded twice for weeks, for the rest of weeks, including the day of study termination.

For tumors collection, animals were sacrificed by overdosed CO 2 and tumors were dissected at 0, 24, 48, 72, 96 (optional), and 168 hours following the dosing. Tumors were first wet weighted, and then separated into three parts for KD, distribution and biomarker analysis. The samples were snap frozen in liquid nitrogen and stored at −80° C. until ready to be processed.

The embodiments described herein are not limiting and one skilled in the art can readily appreciate that specific combinations of the modifications described herein can be tested without undue experimentation toward identifying nucleic acid molecules with improved RNAi activity.

All publications, patents and literature specifically mentioned herein are incorporated by reference in their entirety for all purposes.

It is understood that this invention is not limited to the particular methodology, protocols, materials, and reagents described, as these may vary. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to limit the scope of the present invention. It will be readily apparent to one skilled in the art that varying substitutions and modifications can be made to the description disclosed herein without departing from the scope and spirit of the description, and that those embodiments are within the scope of this description and the appended claims.

It must be noted that as used herein and in the appended claims, the singular forms “a”, “an”, and “the” include plural reference unless the context clearly dictates otherwise. As well, the terms “a” (or “an”), “one or more” and “at least one” can be used interchangeably herein. It is also to be noted that the terms “comprises,” “comprising”, “containing,” “including”, and “having” can be used interchangeably, and shall be read expansively and without limitation.

Recitation of ranges of values herein are merely intended to serve as a shorthand method of referring individually to each separate value falling within the range, unless otherwise indicated herein, and each separate value is incorporated into the specification as if it were individually recited herein. For Markush groups, those skilled in the art will recognize that this description includes the individual members, as well as subgroups of the members of the Markush group.

Without further elaboration, it is believed that one skilled in the art can, based on the above description, utilize the present invention to its fullest extent. The following specific embodiments are, therefore, to be construed as merely illustrative, and not limitative of the remainder of the disclosure in any way whatsoever.

All of the features disclosed in this specification may be combined in any combination. Each feature disclosed in this specification may be replaced by an alternative feature serving the same, equivalent, or similar purpose.

›Tables in the description — 3
TABLE 1 — RNAi molecule sequences for GST-7c
SEQSENSE STRANDSEQANTISENSE STRAND
RefID(5′-->3′)ID(5′-->3′)
PosNOSEQ ID NOS: 2 to 608NOSEQ ID NOS: 609 to 1215
2322GCCGCAGUCUUCGCCACCAtt609UGGUGGCGAAGACUGCGGCgg
2333CCGCAGUCUUCGCCACCAUtt610AUGGUGGCGAAGACUGCGGcg
2344CGCAGUCUUCGCCACCAUGtt611CAUGGUGGCGAAGACUGCGgc
2355GCAGUCUUCGCCACCAUGCtt612GCAUGGUGGCGAAGACUGCgg
2366CAGUCUUCGCCACCAUGCCtt613GGCAUGGUGGCGAAGACUGcg
2377AGUCUUCGCCACCAUGCCGtt614CGGCAUGGUGGCGAAGACUgc
2388GUCUUCGCCACCAUGCCGCtt615GCGGCAUGGUGGCGAAGACtg
2399UCUUCGCCACCAUGCCGCCtt616GGCGGCAUGGUGGCGAAGAct
24010CUUCGCCACCAUGCCGCCCtt617GGGCGGCAUGGUGGCGAAGac
24111UUCGCCACCAUGCCGCCCUtt618AGGGCGGCAUGGUGGCGAAga
24212UCGCCACCAUGCCGCCCUAtt619UAGGGCGGCAUGGUGGCGAag
24313CGCCACCAUGCCGCCCUACtt620GUAGGGCGGCAUGGUGGCGaa
24414GCCACCAUGCCGCCCUACAtt621UGUAGGGCGGCAUGGUGGCga
24515CCACCAUGCCGCCCUACACtt622GUGUAGGGCGGCAUGGUGGcg
24616CACCAUGCCGCCCUACACCtt623GGUGUAGGGCGGCAUGGUGgc
24717ACCAUGCCGCCCUACACCGtt624CGGUGUAGGGCGGCAUGGUgg
24818CCAUGCCGCCCUACACCGUtt625ACGGUGUAGGGCGGCAUGGtg
24919CAUGCCGCCCUACACCGUGtt626CACGGUGUAGGGCGGCAUGgt
25020AUGCCGCCCUACACCGUGGtt627CCACGGUGUAGGGCGGCAUgg
25121UGCCGCCCUACACCGUGGUtt628ACCACGGUGUAGGGCGGCAtg
25222GCCGCCCUACACCGUGGUCtt629GACCACGGUGUAGGGCGGCat
25323CCGCCCUACACCGUGGUCUtt630AGACCACGGUGUAGGGCGGca
25424CGCCCUACACCGUGGUCUAtt631UAGACCACGGUGUAGGGCGgc
25525GCCCUACACCGUGGUCUAUtt632AUAGACCACGGUGUAGGGCgg
25626CCCUACACCGUGGUCUAUUtt633AAUAGACCACGGUGUAGGGcg
25727CCUACACCGUGGUCUAUUUtt634AAAUAGACCACGGUGUAGGgc
25828CUACACCGUGGUCUAUUUCtt635GAAAUAGACCACGGUGUAGgg
25929UACACCGUGGUCUAUUUCCtt636GGAAAUAGACCACGGUGUAgg
26030ACACCGUGGUCUAUUUCCCtt637GGGAAAUAGACCACGGUGUag
26131CACCGUGGUCUAUUUCCCAtt638UGGGAAAUAGACCACGGUGta
26232ACCGUGGUCUAUUUCCCAGtt639CUGGGAAAUAGACCACGGUgt
26333CCGUGGUCUAUUUCCCAGUtt640ACUGGGAAAUAGACCACGGtg
26434CGUGGUCUAUUUCCCAGUUtt641AACUGGGAAAUAGACCACGgt
26535GUGGUCUAUUUCCCAGUUCtt642GAACUGGGAAAUAGACCACgg
26636UGGUCUAUUUCCCAGUUCGtt643CGAACUGGGAAAUAGACCAcg
26737GGUCUAUUUCCCAGUUCGAtt644UCGAACUGGGAAAUAGACCac
26838GUCUAUUUCCCAGUUCGAGtt645CUCGAACUGGGAAAUAGACca
26939UCUAUUUCCCAGUUCGAGGtt646CCUCGAACUGGGAAAUAGAcc
27040CUAUUUCCCAGUUCGAGGCtt647GCCUCGAACUGGGAAAUAGac
27141UAUUUCCCAGUUCGAGGCCtt648GGCCUCGAACUGGGAAAUAga
27242AUUUCCCAGUUCGAGGCCGtt649CGGCCUCGAACUGGGAAAUag
27343UUUCCCAGUUCGAGGCCGCtt650GCGGCCUCGAACUGGGAAAta
27444UUCCCAGUUCGAGGCCGCUtt651AGCGGCCUCGAACUGGGAAat
27545UCCCAGUUCGAGGCCGCUGtt652CAGCGGCCUCGAACUGGGAaa
27646CCCAGUUCGAGGCCGCUGCtt653GCAGCGGCCUCGAACUGGGaa
27747CCAGUUCGAGGCCGCUGCGtt654CGCAGCGGCCUCGAACUGGga
27848CAGUUCGAGGCCGCUGCGCtt655GCGCAGCGGCCUCGAACUGgg
27949AGUUCGAGGCCGCUGCGCGtt656CGCGCAGCGGCCUCGAACUgg
28050GUUCGAGGCCGCUGCGCGGtt657CCGCGCAGCGGCCUCGAACtg
28151UUCGAGGCCGCUGCGCGGCtt658GCCGCGCAGCGGCCUCGAAct
28252UCGAGGCCGCUGCGCGGCCtt659GGCCGCGCAGCGGCCUCGAac
28353CGAGGCCGCUGCGCGGCCCtt660GGGCCGCGCAGCGGCCUCGaa
28454GAGGCCGCUGCGCGGCCCUtt661AGGGCCGCGCAGCGGCCUCga
28555AGGCCGCUGCGCGGCCCUGtt662CAGGGCCGCGCAGCGGCCUcg
28656GGCCGCUGCGCGGCCCUGCtt663GCAGGGCCGCGCAGCGGCCtc
28757GCCGCUGCGCGGCCCUGCGtt664CGCAGGGCCGCGCAGCGGCct
28858CCGCUGCGCGGCCCUGCGCtt665GCGCAGGGCCGCGCAGCGGcc
28959CGCUGCGCGGCCCUGCGCAtt666UGCGCAGGGCCGCGCAGCGgc
29060GCUGCGCGGCCCUGCGCAUtt667AUGCGCAGGGCCGCGCAGCgg
29161CUGCGCGGCCCUGCGCAUGtt668CAUGCGCAGGGCCGCGCAGcg
29262UGCGCGGCCCUGCGCAUGCtt669GCAUGCGCAGGGCCGCGCAgc
29363GCGCGGCCCUGCGCAUGCUtt670AGCAUGCGCAGGGCCGCGCag
29464CGCGGCCCUGCGCAUGCUGtt671CAGCAUGCGCAGGGCCGCGca
29565GCGGCCCUGCGCAUGCUGCtt672GCAGCAUGCGCAGGGCCGCgc
29666CGGCCCUGCGCAUGCUGCUtt673AGCAGCAUGCGCAGGGCCGcg
29767GGCCCUGCGCAUGCUGCUGtt674CAGCAGCAUGCGCAGGGCCgc
29868GCCCUGCGCAUGCUGCUGGtt675CCAGCAGCAUGCGCAGGGCcg
29969CCCUGCGCAUGCUGCUGGCtt676GCCAGCAGCAUGCGCAGGGcc
30070CCUGCGCAUGCUGCUGGCAtt677UGCCAGCAGCAUGCGCAGGgc
30171CUGCGCAUGCUGCUGGCAGtt678CUGCCAGCAGCAUGCGCAGgg
30272UGCGCAUGCUGCUGGCAGAtt679UCUGCCAGCAGCAUGCGCAgg
30373GCGCAUGCUGCUGGCAGAUtt680AUCUGCCAGCAGCAUGCGCag
30474CGCAUGCUGCUGGCAGAUCtt681GAUCUGCCAGCAGCAUGCGca
30575GCAUGCUGCUGGCAGAUCAtt682UGAUCUGCCAGCAGCAUGCgc
30676CAUGCUGCUGGCAGAUCAGtt683CUGAUCUGCCAGCAGCAUGcg
30777AUGCUGCUGGCAGAUCAGGtt684CCUGAUCUGCCAGCAGCAUgc
30878UGCUGCUGGCAGAUCAGGGtt685CCCUGAUCUGCCAGCAGCAtg
30979GCUGCUGGCAGAUCAGGGCtt686GCCCUGAUCUGCCAGCAGCat
31080CUGCUGGCAGAUCAGGGCCtt687GGCCCUGAUCUGCCAGCAGca
31181UGCUGGCAGAUCAGGGCCAtt688UGGCCCUGAUCUGCCAGCAgc
31282GCUGGCAGAUCAGGGCCAGtt689CUGGCCCUGAUCUGCCAGCag
31383CUGGCAGAUCAGGGCCAGAtt690UCUGGCCCUGAUCUGCCAGca
31484UGGCAGAUCAGGGCCAGAGtt691CUCUGGCCCUGAUCUGCCAgc
31585GGCAGAUCAGGGCCAGAGCtt692GCUCUGGCCCUGAUCUGCCag
31686GCAGAUCAGGGCCAGAGCUtt693AGCUCUGGCCCUGAUCUGCca
31787CAGAUCAGGGCCAGAGCUGtt694CAGCUCUGGCCCUGAUCUGcc
31888AGAUCAGGGCCAGAGCUGGtt695CCAGCUCUGGCCCUGAUCUgc
31989GAUCAGGGCCAGAGCUGGAtt696UCCAGCUCUGGCCCUGAUCtg
32090AUCAGGGCCAGAGCUGGAAtt697UUCCAGCUCUGGCCCUGAUct
32191UCAGGGCCAGAGCUGGAAGtt698CUUCCAGCUCUGGCCCUGAtc
32292CAGGGCCAGAGCUGGAAGGtt699CCUUCCAGCUCUGGCCCUGat
32393AGGGCCAGAGCUGGAAGGAtt700UCCUUCCAGCUCUGGCCCUga
32494GGGCCAGAGCUGGAAGGAGtt701CUCCUUCCAGCUCUGGCCCtg
32595GGCCAGAGCUGGAAGGAGGtt702CCUCCUUCCAGCUCUGGCCct
32696GCCAGAGCUGGAAGGAGGAtt703UCCUCCUUCCAGCUCUGGCcc
32797CCAGAGCUGGAAGGAGGAGtt704CUCCUCCUUCCAGCUCUGGcc
32898CAGAGCUGGAAGGAGGAGGtt705CCUCCUCCUUCCAGCUCUGgc
32999AGAGCUGGAAGGAGGAGGUtt706ACCUCCUCCUUCCAGCUCUgg
330100GAGCUGGAAGGAGGAGGUGtt707CACCUCCUCCUUCCAGCUCtg
330101GAGCUGGAAGGAGGAGGUAtt708UACCUCCUCCUUCCAGCUCtg
331102AGCUGGAAGGAGGAGGUGGtt709CCACCUCCUCCUUCCAGCUct
332103GCUGGAAGGAGGAGGUGGUtt710ACCACCUCCUCCUUCCAGCtc
333104CUGGAAGGAGGAGGUGGUGtt711CACCACCUCCUCCUUCCAGct
334105UGGAAGGAGGAGGUGGUGAtt712UCACCACCUCCUCCUUCCAgc
335106GGAAGGAGGAGGUGGUGACtt713GUCACCACCUCCUCCUUCCag
336107GAAGGAGGAGGUGGUGACCtt714GGUCACCACCUCCUCCUUCca
337108AAGGAGGAGGUGGUGACCGtt715CGGUCACCACCUCCUCCUUcc
338109AGGAGGAGGUGGUGACCGUtt716ACGGUCACCACCUCCUCCUtc
339110GGAGGAGGUGGUGACCGUGtt717CACGGUCACCACCUCCUCCtt
340111GAGGAGGUGGUGACCGUGGtt718CCACGGUCACCACCUCCUCct
341112AGGAGGUGGUGACCGUGGAtt719UCCACGGUCACCACCUCCUcc
342113GGAGGUGGUGACCGUGGAGtt720CUCCACGGUCACCACCUCCtc
343114GAGGUGGUGACCGUGGAGAtt721UCUCCACGGUCACCACCUCct
344115AGGUGGUGACCGUGGAGACtt722GUCUCCACGGUCACCACCUcc
345116GGUGGUGACCGUGGAGACGtt723CGUCUCCACGGUCACCACCtc
346117GUGGUGACCGUGGAGACGUtt724ACGUCUCCACGGUCACCACct
347118UGGUGACCGUGGAGACGUGtt725CACGUCUCCACGGUCACCAcc
348119GGUGACCGUGGAGACGUGGtt726CCACGUCUCCACGGUCACCac
349120GUGACCGUGGAGACGUGGCtt727GCCACGUCUCCACGGUCACca
350121UGACCGUGGAGACGUGGCAtt728UGCCACGUCUCCACGGUCAcc
351122GACCGUGGAGACGUGGCAGtt729CUGCCACGUCUCCACGGUCac
352123ACCGUGGAGACGUGGCAGGtt730CCUGCCACGUCUCCACGGUca
353124CCGUGGAGACGUGGCAGGAtt731UCCUGCCACGUCUCCACGGtc
354125CGUGGAGACGUGGCAGGAGtt732CUCCUGCCACGUCUCCACGgt
355126GUGGAGACGUGGCAGGAGGtt733CCUCCUGCCACGUCUCCACgg
356127UGGAGACGUGGCAGGAGGGtt734CCCUCCUGCCACGUCUCCAcg
357128GGAGACGUGGCAGGAGGGCtt735GCCCUCCUGCCACGUCUCCac
358129GAGACGUGGCAGGAGGGCUtt736AGCCCUCCUGCCACGUCUCca
359130AGACGUGGCAGGAGGGCUCtt737GAGCCCUCCUGCCACGUCUcc
360131GACGUGGCAGGAGGGCUCAtt738UGAGCCCUCCUGCCACGUCtc
361132ACGUGGCAGGAGGGCUCACtt739GUGAGCCCUCCUGCCACGUct
362133CGUGGCAGGAGGGCUCACUtt740AGUGAGCCCUCCUGCCACGtc
363134GUGGCAGGAGGGCUCACUCtt741GAGUGAGCCCUCCUGCCACgt
364135UGGCAGGAGGGCUCACUCAtt742UGAGUGAGCCCUCCUGCCAcg
365136GGCAGGAGGGCUCACUCAAtt743UUGAGUGAGCCCUCCUGCCac
366137GCAGGAGGGCUCACUCAAAtt744UUUGAGUGAGCCCUCCUGCca
367138CAGGAGGGCUCACUCAAAGtt745CUUUGAGUGAGCCCUCCUGcc
368139AGGAGGGCUCACUCAAAGCtt746GCUUUGAGUGAGCCCUCCUgc
369140GGAGGGCUCACUCAAAGCCtt747GGCUUUGAGUGAGCCCUCCtg
370141GAGGGCUCACUCAAAGCCUtt748AGGCUUUGAGUGAGCCCUCct
371142AGGGCUCACUCAAAGCCUCtt749GAGGCUUUGAGUGAGCCCUcc
372143GGGCUCACUCAAAGCCUCCtt750GGAGGCUUUGAGUGAGCCCtc
373144GGCUCACUCAAAGCCUCCUtt751AGGAGGCUUUGAGUGAGCCct
374145GCUCACUCAAAGCCUCCUGtt752CAGGAGGCUUUGAGUGAGCcc
375146CUCACUCAAAGCCUCCUGCtt753GCAGGAGGCUUUGAGUGAGcc
376147UCACUCAAAGCCUCCUGCCtt754GGCAGGAGGCUUUGAGUGAgc
377148CACUCAAAGCCUCCUGCCUtt755AGGCAGGAGGCUUUGAGUGag
378149ACUCAAAGCCUCCUGCCUAtt756UAGGCAGGAGGCUUUGAGUga
379150CUCAAAGCCUCCUGCCUAUtt757AUAGGCAGGAGGCUUUGAGtg
380151UCAAAGCCUCCUGCCUAUAtt758UAUAGGCAGGAGGCUUUGAgt
381152CAAAGCCUCCUGCCUAUACtt759GUAUAGGCAGGAGGCUUUGag
382153AAAGCCUCCUGCCUAUACGtt760CGUAUAGGCAGGAGGCUUUga
383154AAGCCUCCUGCCUAUACGGtt761CCGUAUAGGCAGGAGGCUUtg
384155AGCCUCCUGCCUAUACGGGtt762CCCGUAUAGGCAGGAGGCUtt
385156GCCUCCUGCCUAUACGGGCtt763GCCCGUAUAGGCAGGAGGCtt
386157CCUCCUGCCUAUACGGGCAtt764UGCCCGUAUAGGCAGGAGGct
387158CUCCUGCCUAUACGGGCAGtt765CUGCCCGUAUAGGCAGGAGgc
388159UCCUGCCUAUACGGGCAGCtt766GCUGCCCGUAUAGGCAGGAgg
389160CCUGCCUAUACGGGCAGCUtt767AGCUGCCCGUAUAGGCAGGag
390161CUGCCUAUACGGGCAGCUCtt768GAGCUGCCCGUAUAGGCAGga
391162UGCCUAUACGGGCAGCUCCtt769GGAGCUGCCCGUAUAGGCAgg
392163GCCUAUACGGGCAGCUCCCtt770GGGAGCUGCCCGUAUAGGCag
409164CCCAAGUUCCAGGACGGAGtt771CUCCGUCCUGGAACUUGGGga
410165CCAAGUUCCAGGACGGAGAtt772UCUCCGUCCUGGAACUUGGgg
411166CAAGUUCCAGGACGGAGACtt773GUCUCCGUCCUGGAACUUGgg
412167AAGUUCCAGGACGGAGACCtt774GGUCUCCGUCCUGGAACUUgg
413168AGUUCCAGGACGGAGACCUtt775AGGUCUCCGUCCUGGAACUtg
414169GUUCCAGGACGGAGACCUCtt776GAGGUCUCCGUCCUGGAACtt
415170UUCCAGGACGGAGACCUCAtt777UGAGGUCUCCGUCCUGGAAct
416171UCCAGGACGGAGACCUCACtt778GUGAGGUCUCCGUCCUGGAac
417172CCAGGACGGAGACCUCACCtt779GGUGAGGUCUCCGUCCUGGaa
418173CAGGACGGAGACCUCACCCtt780GGGUGAGGUCUCCGUCCUGga
419174AGGACGGAGACCUCACCCUtt781AGGGUGAGGUCUCCGUCCUgg
420175GGACGGAGACCUCACCCUGtt782CAGGGUGAGGUCUCCGUCCtg
421176GACGGAGACCUCACCCUGUtt783ACAGGGUGAGGUCUCCGUCct
422177ACGGAGACCUCACCCUGUAtt784UACAGGGUGAGGUCUCCGUcc
423178CGGAGACCUCACCCUGUACtt785GUACAGGGUGAGGUCUCCGtc
424179GGAGACCUCACCCUGUACCtt786GGUACAGGGUGAGGUCUCCgt
425180GAGACCUCACCCUGUACCAtt787UGGUACAGGGUGAGGUCUCcg
426181AGACCUCACCCUGUACCAGtt788CUGGUACAGGGUGAGGUCUcc
427182GACCUCACCCUGUACCAGUtt789ACUGGUACAGGGUGAGGUCtc
428183ACCUCACCCUGUACCAGUCtt790GACUGGUACAGGGUGAGGUct
429184CCUCACCCUGUACCAGUCCtt791GGACUGGUACAGGGUGAGGtc
430185CUCACCCUGUACCAGUCCAtt792UGGACUGGUACAGGGUGAGgt
431186UCACCCUGUACCAGUCCAAtt793UUGGACUGGUACAGGGUGAgg
432187CACCCUGUACCAGUCCAAUtt794AUUGGACUGGUACAGGGUGag
433188ACCCUGUACCAGUCCAAUAtt795UAUUGGACUGGUACAGGGUga
434189CCCUGUACCAGUCCAAUACtt796GUAUUGGACUGGUACAGGGtg
435190CCUGUACCAGUCCAAUACCtt797GGUAUUGGACUGGUACAGGgt
436191CUGUACCAGUCCAAUACCAtt798UGGUAUUGGACUGGUACAGgg
437192UGUACCAGUCCAAUACCAUtt799AUGGUAUUGGACUGGUACAgg
438193GUACCAGUCCAAUACCAUCtt800GAUGGUAUUGGACUGGUACag
439194UACCAGUCCAAUACCAUCCtt801GGAUGGUAUUGGACUGGUAca
440195ACCAGUCCAAUACCAUCCUtt802AGGAUGGUAUUGGACUGGUac
441196CCAGUCCAAUACCAUCCUGtt803CAGGAUGGUAUUGGACUGGta
442197CAGUCCAAUACCAUCCUGCtt804GCAGGAUGGUAUUGGACUGgt
443198AGUCCAAUACCAUCCUGCGtt805CGCAGGAUGGUAUUGGACUgg
444199GUCCAAUACCAUCCUGCGUtt806ACGCAGGAUGGUAUUGGACtg
445200UCCAAUACCAUCCUGCGUCtt807GACGCAGGAUGGUAUUGGAct
446201CCAAUACCAUCCUGCGUCAtt808UGACGCAGGAUGGUAUUGGac
447202CAAUACCAUCCUGCGUCACtt809GUGACGCAGGAUGGUAUUGga
448203AAUACCAUCCUGCGUCACCtt810GGUGACGCAGGAUGGUAUUgg
449204AUACCAUCCUGCGUCACCUtt811AGGUGACGCAGGAUGGUAUtg
450205UACCAUCCUGCGUCACCUGtt812CAGGUGACGCAGGAUGGUAtt
451206ACCAUCCUGCGUCACCUGGtt813CCAGGUGACGCAGGAUGGUat
452207CCAUCCUGCGUCACCUGGGtt814CCCAGGUGACGCAGGAUGGta
453208CAUCCUGCGUCACCUGGGCtt815GCCCAGGUGACGCAGGAUGgt
454209AUCCUGCGUCACCUGGGCCtt816GGCCCAGGUGACGCAGGAUgg
455210UCCUGCGUCACCUGGGCCGtt817CGGCCCAGGUGACGCAGGAtg
456211CCUGCGUCACCUGGGCCGCtt818GCGGCCCAGGUGACGCAGGat
457212CUGCGUCACCUGGGCCGCAtt819UGCGGCCCAGGUGACGCAGga
458213UGCGUCACCUGGGCCGCACtt820GUGCGGCCCAGGUGACGCAgg
459214GCGUCACCUGGGCCGCACCtt821GGUGCGGCCCAGGUGACGCag
460215CGUCACCUGGGCCGCACCCtt822GGGUGCGGCCCAGGUGACGca
461216GUCACCUGGGCCGCACCCUtt823AGGGUGCGGCCCAGGUGACgc
462217UCACCUGGGCCGCACCCUUtt824AAGGGUGCGGCCCAGGUGAcg
463218CACCUGGGCCGCACCCUUGtt825CAAGGGUGCGGCCCAGGUGac
464219ACCUGGGCCGCACCCUUGGtt826CCAAGGGUGCGGCCCAGGUga
465220CCUGGGCCGCACCCUUGGGtt827CCCAAGGGUGCGGCCCAGGtg
466221CUGGGCCGCACCCUUGGGCtt828GCCCAAGGGUGCGGCCCAGgt
467222UGGGCCGCACCCUUGGGCUtt829AGCCCAAGGGUGCGGCCCAgg
468223GGGCCGCACCCUUGGGCUCtt830GAGCCCAAGGGUGCGGCCCag
469224GGCCGCACCCUUGGGCUCUtt831AGAGCCCAAGGGUGCGGCCca
470225GCCGCACCCUUGGGCUCUAtt832UAGAGCCCAAGGGUGCGGCcc
471226CCGCACCCUUGGGCUCUAUtt833AUAGAGCCCAAGGGUGCGGcc
472227CGCACCCUUGGGCUCUAUGtt834CAUAGAGCCCAAGGGUGCGgc
473228GCACCCUUGGGCUCUAUGGtt835CCAUAGAGCCCAAGGGUGCgg
474229CACCCUUGGGCUCUAUGGGtt836CCCAUAGAGCCCAAGGGUGcg
475230ACCCUUGGGCUCUAUGGGAtt837UCCCAUAGAGCCCAAGGGUgc
476231CCCUUGGGCUCUAUGGGAAtt838UUCCCAUAGAGCCCAAGGGtg
477232CCUUGGGCUCUAUGGGAAGtt839CUUCCCAUAGAGCCCAAGGgt
478233CUUGGGCUCUAUGGGAAGGtt840CCUUCCCAUAGAGCCCAAGgg
479234UUGGGCUCUAUGGGAAGGAtt841UCCUUCCCAUAGAGCCCAAgg
480235UGGGCUCUAUGGGAAGGACtt842GUCCUUCCCAUAGAGCCCAag
481236GGGCUCUAUGGGAAGGACCtt843GGUCCUUCCCAUAGAGCCCaa
482237GGCUCUAUGGGAAGGACCAtt844UGGUCCUUCCCAUAGAGCCca
483238GCUCUAUGGGAAGGACCAGtt845CUGGUCCUUCCCAUAGAGCcc
484239CUCUAUGGGAAGGACCAGCtt846GCUGGUCCUUCCCAUAGAGcc
485240UCUAUGGGAAGGACCAGCAtt847UGCUGGUCCUUCCCAUAGAgc
486241CUAUGGGAAGGACCAGCAGtt848CUGCUGGUCCUUCCCAUAGag
487242UAUGGGAAGGACCAGCAGGtt849CCUGCUGGUCCUUCCCAUAga
488243AUGGGAAGGACCAGCAGGAtt850UCCUGCUGGUCCUUCCCAUag
489244UGGGAAGGACCAGCAGGAGtt851CUCCUGCUGGUCCUUCCCAta
490245GGGAAGGACCAGCAGGAGGtt852CCUCCUGCUGGUCCUUCCCat
491246GGAAGGACCAGCAGGAGGCtt853GCCUCCUGCUGGUCCUUCCca
492247GAAGGACCAGCAGGAGGCAtt854UGCCUCCUGCUGGUCCUUCcc
493248AAGGACCAGCAGGAGGCAGtt855CUGCCUCCUGCUGGUCCUUcc
494249AGGACCAGCAGGAGGCAGCtt856GCUGCCUCCUGCUGGUCCUtc
495250GGACCAGCAGGAGGCAGCCtt857GGCUGCCUCCUGCUGGUCCtt
496251GACCAGCAGGAGGCAGCCCtt858GGGCUGCCUCCUGCUGGUCct
497252ACCAGCAGGAGGCAGCCCUtt859AGGGCUGCCUCCUGCUGGUcc
498253CCAGCAGGAGGCAGCCCUGtt860CAGGGCUGCCUCCUGCUGGtc
499254CAGCAGGAGGCAGCCCUGGtt861CCAGGGCUGCCUCCUGCUGgt
500255AGCAGGAGGCAGCCCUGGUtt862ACCAGGGCUGCCUCCUGCUgg
501256GCAGGAGGCAGCCCUGGUGtt863CACCAGGGCUGCCUCCUGCtg
502257CAGGAGGCAGCCCUGGUGGtt864CCACCAGGGCUGCCUCCUGct
503258AGGAGGCAGCCCUGGUGGAtt865UCCACCAGGGCUGCCUCCUgc
504259GGAGGCAGCCCUGGUGGACtt866GUCCACCAGGGCUGCCUCCtg
505260GAGGCAGCCCUGGUGGACAtt867UGUCCACCAGGGCUGCCUCct
506261AGGCAGCCCUGGUGGACAUtt868AUGUCCACCAGGGCUGCCUcc
507262GGCAGCCCUGGUGGACAUGtt869CAUGUCCACCAGGGCUGCCtc
508263GCAGCCCUGGUGGACAUGGtt870CCAUGUCCACCAGGGCUGCct
509264CAGCCCUGGUGGACAUGGUtt871ACCAUGUCCACCAGGGCUGcc
510265AGCCCUGGUGGACAUGGUGtt872CACCAUGUCCACCAGGGCUgc
511266GCCCUGGUGGACAUGGUGAtt873UCACCAUGUCCACCAGGGCtg
512267CCCUGGUGGACAUGGUGAAtt874UUCACCAUGUCCACCAGGGct
513268CCUGGUGGACAUGGUGAAUtt875AUUCACCAUGUCCACCAGGgc
514269CUGGUGGACAUGGUGAAUGtt876CAUUCACCAUGUCCACCAGgg
515270UGGUGGACAUGGUGAAUGAtt877UCAUUCACCAUGUCCACCAgg
516271GGUGGACAUGGUGAAUGACtt878GUCAUUCACCAUGUCCACCag
517272GUGGACAUGGUGAAUGACGtt879CGUCAUUCACCAUGUCCACca
518273UGGACAUGGUGAAUGACGGtt880CCGUCAUUCACCAUGUCCAcc
519274GGACAUGGUGAAUGACGGCtt881GCCGUCAUUCACCAUGUCCac
520275GACAUGGUGAAUGACGGCGtt882CGCCGUCAUUCACCAUGUCca
521276ACAUGGUGAAUGACGGCGUtt883ACGCCGUCAUUCACCAUGUcc
522277CAUGGUGAAUGACGGCGUGtt884CACGCCGUCAUUCACCAUGtc
523278AUGGUGAAUGACGGCGUGGtt885CCACGCCGUCAUUCACCAUgt
524279UGGUGAAUGACGGCGUGGAtt886UCCACGCCGUCAUUCACCAtg
525280GGUGAAUGACGGCGUGGAGtt887CUCCACGCCGUCAUUCACCat
526281GUGAAUGACGGCGUGGAGGtt888CCUCCACGCCGUCAUUCACca
527282UGAAUGACGGCGUGGAGGAtt889UCCUCCACGCCGUCAUUCAcc
528283GAAUGACGGCGUGGAGGACtt890GUCCUCCACGCCGUCAUUCac
529284AAUGACGGCGUGGAGGACCtt891GGUCCUCCACGCCGUCAUUca
530285AUGACGGCGUGGAGGACCUtt892AGGUCCUCCACGCCGUCAUtc
531286UGACGGCGUGGAGGACCUCtt893GAGGUCCUCCACGCCGUCAtt
532287GACGGCGUGGAGGACCUCCtt894GGAGGUCCUCCACGCCGUCat
533288ACGGCGUGGAGGACCUCCGtt895CGGAGGUCCUCCACGCCGUca
534289CGGCGUGGAGGACCUCCGCtt896GCGGAGGUCCUCCACGCCGtc
535290GGCGUGGAGGACCUCCGCUtt897AGCGGAGGUCCUCCACGCCgt
536291GCGUGGAGGACCUCCGCUGtt898CAGCGGAGGUCCUCCACGCcg
537292CGUGGAGGACCUCCGCUGCtt899GCAGCGGAGGUCCUCCACGcc
538293GUGGAGGACCUCCGCUGCAtt900UGCAGCGGAGGUCCUCCACgc
539294UGGAGGACCUCCGCUGCAAtt901UUGCAGCGGAGGUCCUCCAcg
540295GGAGGACCUCCGCUGCAAAtt902UUUGCAGCGGAGGUCCUCCac
541296GAGGACCUCCGCUGCAAAUtt903AUUUGCAGCGGAGGUCCUCca
542297AGGACCUCCGCUGCAAAUAtt904UAUUUGCAGCGGAGGUCCUcc
543298GGACCUCCGCUGCAAAUACtt905GUAUUUGCAGCGGAGGUCCtc
544299GACCUCCGCUGCAAAUACAtt906UGUAUUUGCAGCGGAGGUCct
545300ACCUCCGCUGCAAAUACAUtt907AUGUAUUUGCAGCGGAGGUcc
546301CCUCCGCUGCAAAUACAUCtt908GAUGUAUUUGCAGCGGAGGtc
547302CUCCGCUGCAAAUACAUCUtt909AGAUGUAUUUGCAGCGGAGgt
548303UCCGCUGCAAAUACAUCUCtt910GAGAUGUAUUUGCAGCGGAgg
549304CCGCUGCAAAUACAUCUCCtt911GGAGAUGUAUUUGCAGCGGag
550305CGCUGCAAAUACAUCUCCCtt912GGGAGAUGUAUUUGCAGCGga
551306GCUGCAAAUACAUCUCCCUtt913AGGGAGAUGUAUUUGCAGCgg
552307CUGCAAAUACAUCUCCCUCtt914GAGGGAGAUGUAUUUGCAGcg
553308UGCAAAUACAUCUCCCUCAtt915UGAGGGAGAUGUAUUUGCAgc
554309GCAAAUACAUCUCCCUCAUtt916AUGAGGGAGAUGUAUUUGCag
555310CAAAUACAUCUCCCUCAUCtt917GAUGAGGGAGAUGUAUUUGca
556311AAAUACAUCUCCCUCAUCUtt918AGAUGAGGGAGAUGUAUUUgc
557312AAUACAUCUCCCUCAUCUAtt919UAGAUGAGGGAGAUGUAUUtg
558313AUACAUCUCCCUCAUCUACtt920GUAGAUGAGGGAGAUGUAUtt
559314UACAUCUCCCUCAUCUACAtt921UGUAGAUGAGGGAGAUGUAtt
560315ACAUCUCCCUCAUCUACACtt922GUGUAGAUGAGGGAGAUGUat
561316CAUCUCCCUCAUCUACACCtt923GGUGUAGAUGAGGGAGAUGta
562317AUCUCCCUCAUCUACACCAtt924UGGUGUAGAUGAGGGAGAUgt
563318UCUCCCUCAUCUACACCAAtt925UUGGUGUAGAUGAGGGAGAtg
563319GCUCCCUCAUCUACACCAAtt926UUGGUGUAGAUGAGGGAGCtg
564320CUCCCUCAUCUACACCAACtt927GUUGGUGUAGAUGAGGGAGat
565321UCCCUCAUCUACACCAACUtt928AGUUGGUGUAGAUGAGGGAga
565322CUCCCUCAUCUACACCAAAtt929UUUGGUGUAGAUGAGGGAGat
566323CCCUCAUCUACACCAACUAtt930UAGUUGGUGUAGAUGAGGGag
567324CCUCAUCUACACCAACUAUtt931AUAGUUGGUGUAGAUGAGGga
567325CCUCAUCUACACCAACUAAtt932UUAGUUGGUGUAGAUGAGGga
568326CUCAUCUACACCAACUAUGtt933CAUAGUUGGUGUAGAUGAGgg
569327UCAUCUACACCAACUAUGAtt934UCAUAGUUGGUGUAGAUGAgg
570328CAUCUACACCAACUAUGAGtt935CUCAUAGUUGGUGUAGAUGag
571329AUCUACACCAACUAUGAGGtt936CCUCAUAGUUGGUGUAGAUga
572330UCUACACCAACUAUGAGGCtt937GCCUCAUAGUUGGUGUAGAtg
573331CUACACCAACUAUGAGGCGtt938CGCCUCAUAGUUGGUGUAGat
574332UACACCAACUAUGAGGCGGtt939CCGCCUCAUAGUUGGUGUAga
575333ACACCAACUAUGAGGCGGGtt940CCCGCCUCAUAGUUGGUGUag
576334CACCAACUAUGAGGCGGGCtt941GCCCGCCUCAUAGUUGGUGta
577335ACCAACUAUGAGGCGGGCAtt942UGCCCGCCUCAUAGUUGGUgt
578336CCAACUAUGAGGCGGGCAAtt943UUGCCCGCCUCAUAGUUGGtg
579337CAACUAUGAGGCGGGCAAGtt944CUUGCCCGCCUCAUAGUUGgt
580338AACUAUGAGGCGGGCAAGGtt945CCUUGCCCGCCUCAUAGUUgg
581339ACUAUGAGGCGGGCAAGGAtt946UCCUUGCCCGCCUCAUAGUtg
582340CUAUGAGGCGGGCAAGGAUtt947AUCCUUGCCCGCCUCAUAGtt
583341UAUGAGGCGGGCAAGGAUGtt948CAUCCUUGCCCGCCUCAUAgt
584342AUGAGGCGGGCAAGGAUGAtt949UCAUCCUUGCCCGCCUCAUag
585343UGAGGCGGGCAAGGAUGACtt950GUCAUCCUUGCCCGCCUCAta
586344GAGGCGGGCAAGGAUGACUtt951AGUCAUCCUUGCCCGCCUCat
587345AGGCGGGCAAGGAUGACUAtt952UAGUCAUCCUUGCCCGCCUca
588346GGCGGGCAAGGAUGACUAUtt953AUAGUCAUCCUUGCCCGCCtc
589347GCGGGCAAGGAUGACUAUGtt954CAUAGUCAUCCUUGCCCGCct
590348CGGGCAAGGAUGACUAUGUtt955ACAUAGUCAUCCUUGCCCGcc
591349GGGCAAGGAUGACUAUGUGtt956CACAUAGUCAUCCUUGCCCgc
592350GGCAAGGAUGACUAUGUGAtt957UCACAUAGUCAUCCUUGCCcg
593351GCAAGGAUGACUAUGUGAAtt958UUCACAUAGUCAUCCUUGCcc
594352CAAGGAUGACUAUGUGAAGtt959CUUCACAUAGUCAUCCUUGcc
595353AAGGAUGACUAUGUGAAGGtt960CCUUCACAUAGUCAUCCUUgc
596354AGGAUGACUAUGUGAAGGCtt961GCCUUCACAUAGUCAUCCUtg
597355GGAUGACUAUGUGAAGGCAtt962UGCCUUCACAUAGUCAUCCtt
598356GAUGACUAUGUGAAGGCACtt963GUGCCUUCACAUAGUCAUCct
599357AUGACUAUGUGAAGGCACUtt964AGUGCCUUCACAUAGUCAUcc
600358UGACUAUGUGAAGGCACUGtt965CAGUGCCUUCACAUAGUCAtc
601359GACUAUGUGAAGGCACUGCtt966GCAGUGCCUUCACAUAGUCat
602360ACUAUGUGAAGGCACUGCCtt967GGCAGUGCCUUCACAUAGUca
603361CUAUGUGAAGGCACUGCCCtt968GGGCAGUGCCUUCACAUAGtc
604362UAUGUGAAGGCACUGCCCGtt969CGGGCAGUGCCUUCACAUAgt
605363AUGUGAAGGCACUGCCCGGtt970CCGGGCAGUGCCUUCACAUag
606364UGUGAAGGCACUGCCCGGGtt971CCCGGGCAGUGCCUUCACAta
607365GUGAAGGCACUGCCCGGGCtt972GCCCGGGCAGUGCCUUCACat
608366UGAAGGCACUGCCCGGGCAtt973UGCCCGGGCAGUGCCUUCAca
609367GAAGGCACUGCCCGGGCAAtt974UUGCCCGGGCAGUGCCUUCac
610368AAGGCACUGCCCGGGCAACtt975GUUGCCCGGGCAGUGCCUUca
611369AGGCACUGCCCGGGCAACUtt976AGUUGCCCGGGCAGUGCCUtc
612370GGCACUGCCCGGGCAACUGtt977CAGUUGCCCGGGCAGUGCCtt
613371GCACUGCCCGGGCAACUGAtt978UCAGUUGCCCGGGCAGUGCct
614372CACUGCCCGGGCAACUGAAtt979UUCAGUUGCCCGGGCAGUGcc
615373ACUGCCCGGGCAACUGAAGtt980CUUCAGUUGCCCGGGCAGUgc
616374CUGCCCGGGCAACUGAAGCtt981GCUUCAGUUGCCCGGGCAGtg
617375UGCCCGGGCAACUGAAGCCtt982GGCUUCAGUUGCCCGGGCAgt
618376GCCCGGGCAACUGAAGCCUtt983AGGCUUCAGUUGCCCGGGCag
619377CCCGGGCAACUGAAGCCUUtt984AAGGCUUCAGUUGCCCGGGca
620378CCGGGCAACUGAAGCCUUUtt985AAAGGCUUCAGUUGCCCGGgc
621379CGGGCAACUGAAGCCUUUUtt986AAAAGGCUUCAGUUGCCCGgg
622380GGGCAACUGAAGCCUUUUGtt987CAAAAGGCUUCAGUUGCCCgg
623381GGCAACUGAAGCCUUUUGAtt988UCAAAAGGCUUCAGUUGCCcg
624382GCAACUGAAGCCUUUUGAGtt989CUCAAAAGGCUUCAGUUGCcc
625383CAACUGAAGCCUUUUGAGAtt990UCUCAAAAGGCUUCAGUUGcc
626384AACUGAAGCCUUUUGAGACtt991GUCUCAAAAGGCUUCAGUUgc
627385ACUGAAGCCUUUUGAGACCtt992GGUCUCAAAAGGCUUCAGUtg
627386ACUGAAGCCUUUUGAGACAtt993UGUCUCAAAAGGCUUCAGUtg
628387CUGAAGCCUUUUGAGACCCtt994GGGUCUCAAAAGGCUUCAGtt
629388UGAAGCCUUUUGAGACCCUtt995AGGGUCUCAAAAGGCUUCAgt
630389GAAGCCUUUUGAGACCCUGtt996CAGGGUCUCAAAAGGCUUCag
631390AAGCCUUUUGAGACCCUGCtt997GCAGGGUCUCAAAAGGCUUca
631391GAAGCCUUUUGAGACCCUAtt998UAGGGUCUCAAAAGGCUUCag
632392AGCCUUUUGAGACCCUGCUtt999AGCAGGGUCUCAAAAGGCUtc
632393CGCCUUUUGAGACCCUGCAtt1000UGCAGGGUCUCAAAAGGCGtc
632394AGCCUUUUGAGACCCUGCAtt1001UGCAGGGUCUCAAAAGGCUtc
633395GCCUUUUGAGACCCUGCUGtt1002CAGCAGGGUCUCAAAAGGCtt
634396CCUUUUGAGACCCUGCUGUtt1003ACAGCAGGGUCUCAAAAGGct
634397CCUUUUGAGACCCUGCUGAtt1004UCAGCAGGGUCUCAAAAGGct
635398CUUUUGAGACCCUGCUGUCtt1005GACAGCAGGGUCUCAAAAGgc
635399CUUUUGAGACCCUGCUGUAtt1006UACAGCAGGGUCUCAAAAGgc
636400UUUUGAGACCCUGCUGUCCtt1007GGACAGCAGGGUCUCAAAAgg
637401UUUGAGACCCUGCUGUCCCtt1008GGGACAGCAGGGUCUCAAAag
638402UUGAGACCCUGCUGUCCCAtt1009UGGGACAGCAGGGUCUCAAaa
639403UGAGACCCUGCUGUCCCAGtt1010CUGGGACAGCAGGGUCUCAaa
640404GAGACCCUGCUGUCCCAGAtt1011UCUGGGACAGCAGGGUCUCaa
641405AGACCCUGCUGUCCCAGAAtt1012UUCUGGGACAGCAGGGUCUca
642406GACCCUGCUGUCCCAGAACtt1013GUUCUGGGACAGCAGGGUCtc
643407ACCCUGCUGUCCCAGAACCtt1014GGUUCUGGGACAGCAGGGUct
643408ACCCUGCUGUCCCAGAACAtt1015UGUUCUGGGACAGCAGGGUct
644409CCCUGCUGUCCCAGAACCAtt1016UGGUUCUGGGACAGCAGGGtc
645410CCUGCUGUCCCAGAACCAGtt1017CUGGUUCUGGGACAGCAGGgt
646411CUGCUGUCCCAGAACCAGGtt1018CCUGGUUCUGGGACAGCAGgg
647412UGCUGUCCCAGAACCAGGGtt1019CCCUGGUUCUGGGACAGCAgg
648413UGCUGUCCCAGAACCAGGAtt1020UCCUGGUUCUGGGACAGCAgg
648414GCUGUCCCAGAACCAGGGAtt1021UCCCUGGUUCUGGGACAGCag
649415CUGUCCCAGAACCAGGGAGtt1022CUCCCUGGUUCUGGGACAGca
650416UGUCCCAGAACCAGGGAGGtt1023CCUCCCUGGUUCUGGGACAgc
651417GUCCCAGAACCAGGGAGGCtt1024GCCUCCCUGGUUCUGGGACag
652418UCCCAGAACCAGGGAGGCAtt1025UGCCUCCCUGGUUCUGGGAca
653419CCCAGAACCAGGGAGGCAAtt1026UUGCCUCCCUGGUUCUGGGac
654420CCAGAACCAGGGAGGCAAGtt1027CUUGCCUCCCUGGUUCUGGga
655421CAGAACCAGGGAGGCAAGAtt1028UCUUGCCUCCCUGGUUCUGgg
656422AGAACCAGGGAGGCAAGACtt1029GUCUUGCCUCCCUGGUUCUgg
657423GAACCAGGGAGGCAAGACCtt1030GGUCUUGCCUCCCUGGUUCtg
658424AACCAGGGAGGCAAGACCUtt1031AGGUCUUGCCUCCCUGGUUct
659425ACCAGGGAGGCAAGACCUUtt1032AAGGUCUUGCCUCCCUGGUtc
660426CCAGGGAGGCAAGACCUUCtt1033GAAGGUCUUGCCUCCCUGGtt
661427CAGGGAGGCAAGACCUUCAtt1034UGAAGGUCUUGCCUCCCUGgt
662428AGGGAGGCAAGACCUUCAUtt1035AUGAAGGUCUUGCCUCCCUgg
663429GGGAGGCAAGACCUUCAUUtt1036AAUGAAGGUCUUGCCUCCCtg
664430GGAGGCAAGACCUUCAUUGtt1037CAAUGAAGGUCUUGCCUCCct
665431GAGGCAAGACCUUCAUUGUtt1038ACAAUGAAGGUCUUGCCUCcc
666432AGGCAAGACCUUCAUUGUGtt1039CACAAUGAAGGUCUUGCCUcc
667433GGCAAGACCUUCAUUGUGGtt1040CCACAAUGAAGGUCUUGCCtc
668434GCAAGACCUUCAUUGUGGGtt1041CCCACAAUGAAGGUCUUGCct
669435CAAGACCUUCAUUGUGGGAtt1042UCCCACAAUGAAGGUCUUGcc
670436AAGACCUUCAUUGUGGGAGtt1043CUCCCACAAUGAAGGUCUUgc
671437AGACCUUCAUUGUGGGAGAtt1044UCUCCCACAAUGAAGGUCUtg
672438GACCUUCAUUGUGGGAGACtt1045GUCUCCCACAAUGAAGGUCtt
673439ACCUUCAUUGUGGGAGACCtt1046GGUCUCCCACAAUGAAGGUct
674440CCUUCAUUGUGGGAGACCAtt1047UGGUCUCCCACAAUGAAGGtc
675441CUUCAUUGUGGGAGACCAGtt1048CUGGUCUCCCACAAUGAAGgt
676442UUCAUUGUGGGAGACCAGAtt1049UCUGGUCUCCCACAAUGAAgg
677443UCAUUGUGGGAGACCAGAUtt1050AUCUGGUCUCCCACAAUGAag
678444CAUUGUGGGAGACCAGAUCtt1051GAUCUGGUCUCCCACAAUGaa
679445AUUGUGGGAGACCAGAUCUtt1052AGAUCUGGUCUCCCACAAUga
680446UUGUGGGAGACCAGAUCUCtt1053GAGAUCUGGUCUCCCACAAtg
681447UGUGGGAGACCAGAUCUCCtt1054GGAGAUCUGGUCUCCCACAat
682448GUGGGAGACCAGAUCUCCUtt1055AGGAGAUCUGGUCUCCCACaa
683449UGGGAGACCAGAUCUCCUUtt1056AAGGAGAUCUGGUCUCCCAca
684450GGGAGACCAGAUCUCCUUCtt1057GAAGGAGAUCUGGUCUCCCac
685451GGAGACCAGAUCUCCUUCGtt1058CGAAGGAGAUCUGGUCUCCca
686452GAGACCAGAUCUCCUUCGCtt1059GCGAAGGAGAUCUGGUCUCcc
687453AGACCAGAUCUCCUUCGCUtt1060AGCGAAGGAGAUCUGGUCUcc
688454GACCAGAUCUCCUUCGCUGtt1061CAGCGAAGGAGAUCUGGUCtc
689455ACCAGAUCUCCUUCGCUGAtt1062UCAGCGAAGGAGAUCUGGUct
690456CCAGAUCUCCUUCGCUGACtt1063GUCAGCGAAGGAGAUCUGGtc
691457CAGAUCUCCUUCGCUGACUtt1064AGUCAGCGAAGGAGAUCUGgt
692458AGAUCUCCUUCGCUGACUAtt1065UAGUCAGCGAAGGAGAUCUgg
693459GAUCUCCUUCGCUGACUACtt1066GUAGUCAGCGAAGGAGAUCtg
694460AUCUCCUUCGCUGACUACAtt1067UGUAGUCAGCGAAGGAGAUct
695461UCUCCUUCGCUGACUACAAtt1068UUGUAGUCAGCGAAGGAGAtc
696462CUCCUUCGCUGACUACAACtt1069GUUGUAGUCAGCGAAGGAGat
697463UCCUUCGCUGACUACAACCtt1070GGUUGUAGUCAGCGAAGGAga
698464CCUUCGCUGACUACAACCUtt1071AGGUUGUAGUCAGCGAAGGag
699465CUUCGCUGACUACAACCUGtt1072CAGGUUGUAGUCAGCGAAGga
700466UUCGCUGACUACAACCUGCtt1073GCAGGUUGUAGUCAGCGAAgg
701467UCGCUGACUACAACCUGCUtt1074AGCAGGUUGUAGUCAGCGAag
702468CGCUGACUACAACCUGCUGtt1075CAGCAGGUUGUAGUCAGCGaa
703469GCUGACUACAACCUGCUGGtt1076CCAGCAGGUUGUAGUCAGCga
704470CUGACUACAACCUGCUGGAtt1077UCCAGCAGGUUGUAGUCAGcg
705471UGACUACAACCUGCUGGACtt1078GUCCAGCAGGUUGUAGUCAgc
706472GACUACAACCUGCUGGACUtt1079AGUCCAGCAGGUUGUAGUCag
707473ACUACAACCUGCUGGACUUtt1080AAGUCCAGCAGGUUGUAGUca
708474CUACAACCUGCUGGACUUGtt1081CAAGUCCAGCAGGUUGUAGtc
709475UACAACCUGCUGGACUUGCtt1082GCAAGUCCAGCAGGUUGUAgt
710476ACAACCUGCUGGACUUGCUtt1083AGCAAGUCCAGCAGGUUGUag
711477CAACCUGCUGGACUUGCUGtt1084CAGCAAGUCCAGCAGGUUGta
712478AACCUGCUGGACUUGCUGCtt1085GCAGCAAGUCCAGCAGGUUgt
713479ACCUGCUGGACUUGCUGCUtt1086AGCAGCAAGUCCAGCAGGUtg
714480CCUGCUGGACUUGCUGCUGtt1087CAGCAGCAAGUCCAGCAGGtt
715481CUGCUGGACUUGCUGCUGAtt1088UCAGCAGCAAGUCCAGCAGgt
716482UGCUGGACUUGCUGCUGAUtt1089AUCAGCAGCAAGUCCAGCAgg
717483GCUGGACUUGCUGCUGAUCtt1090GAUCAGCAGCAAGUCCAGCag
718484CUGGACUUGCUGCUGAUCCtt1091GGAUCAGCAGCAAGUCCAGca
719485UGGACUUGCUGCUGAUCCAtt1092UGGAUCAGCAGCAAGUCCAgc
720486GGACUUGCUGCUGAUCCAUtt1093AUGGAUCAGCAGCAAGUCCag
721487GACUUGCUGCUGAUCCAUGtt1094CAUGGAUCAGCAGCAAGUCca
722488ACUUGCUGCUGAUCCAUGAtt1095UCAUGGAUCAGCAGCAAGUcc
723489CUUGCUGCUGAUCCAUGAGtt1096CUCAUGGAUCAGCAGCAAGtc
724490UUGCUGCUGAUCCAUGAGGtt1097CCUCAUGGAUCAGCAGCAAgt
725491UGCUGCUGAUCCAUGAGGUtt1098ACCUCAUGGAUCAGCAGCAag
726492GCUGCUGAUCCAUGAGGUCtt1099GACCUCAUGGAUCAGCAGCaa
727493CUGCUGAUCCAUGAGGUCCtt1100GGACCUCAUGGAUCAGCAGca
728494UGCUGAUCCAUGAGGUCCUtt1101AGGACCUCAUGGAUCAGCAgc
729495GCUGAUCCAUGAGGUCCUAtt1102UAGGACCUCAUGGAUCAGCag
730496CUGAUCCAUGAGGUCCUAGtt1103CUAGGACCUCAUGGAUCAGca
731497UGAUCCAUGAGGUCCUAGCtt1104GCUAGGACCUCAUGGAUCAgc
732498GAUCCAUGAGGUCCUAGCCtt1105GGCUAGGACCUCAUGGAUCag
733499AUCCAUGAGGUCCUAGCCCtt1106GGGCUAGGACCUCAUGGAUca
750500CCCUGGCUGCCUGGAUGCGtt1107CGCAUCCAGGCAGCCAGGGgc
751501CCUGGCUGCCUGGAUGCGUtt1108ACGCAUCCAGGCAGCCAGGgg
752502CUGGCUGCCUGGAUGCGUUtt1109AACGCAUCCAGGCAGCCAGgg
753503UGGCUGCCUGGAUGCGUUCtt1110GAACGCAUCCAGGCAGCCAgg
754504GGCUGCCUGGAUGCGUUCCtt1111GGAACGCAUCCAGGCAGCCag
755505GCUGCCUGGAUGCGUUCCCtt1112GGGAACGCAUCCAGGCAGCca
773506CCCUGCUCUCAGCAUAUGUtt1113ACAUAUGCUGAGAGCAGGGgg
774507CCUGCUCUCAGCAUAUGUGtt1114CACAUAUGCUGAGAGCAGGgg
775508CUGCUCUCAGCAUAUGUGGtt1115CCACAUAUGCUGAGAGCAGgg
776509UGCUCUCAGCAUAUGUGGGtt1116CCCACAUAUGCUGAGAGCAgg
793510GGGCGCCUCAGUGCCCGGCtt1117GCCGGGCACUGAGGCGCCCca
794511GGCGCCUCAGUGCCCGGCCtt1118GGCCGGGCACUGAGGCGCCcc
795512GCGCCUCAGUGCCCGGCCCtt1119GGGCCGGGCACUGAGGCGCcc
796513CGCCUCAGUGCCCGGCCCAtt1120UGGGCCGGGCACUGAGGCGcc
797514GCCUCAGUGCCCGGCCCAAtt1121UUGGGCCGGGCACUGAGGCgc
798515CCUCAGUGCCCGGCCCAAGtt1122CUUGGGCCGGGCACUGAGGcg
799516CUCAGUGCCCGGCCCAAGCtt1123GCUUGGGCCGGGCACUGAGgc
800517UCAGUGCCCGGCCCAAGCUtt1124AGCUUGGGCCGGGCACUGAgg
801518CAGUGCCCGGCCCAAGCUCtt1125GAGCUUGGGCCGGGCACUGag
802519AGUGCCCGGCCCAAGCUCAtt1126UGAGCUUGGGCCGGGCACUga
803520GUGCCCGGCCCAAGCUCAAtt1127UUGAGCUUGGGCCGGGCACtg
804521UGCCCGGCCCAAGCUCAAGtt1128CUUGAGCUUGGGCCGGGCAct
805522GCCCGGCCCAAGCUCAAGGtt1129CCUUGAGCUUGGGCCGGGCac
806523CCCGGCCCAAGCUCAAGGCtt1130GCCUUGAGCUUGGGCCGGGca
807524CCGGCCCAAGCUCAAGGCCtt1131GGCCUUGAGCUUGGGCCGGgc
808525CGGCCCAAGCUCAAGGCCUtt1132AGGCCUUGAGCUUGGGCCGgg
809526GGCCCAAGCUCAAGGCCUUtt1133AAGGCCUUGAGCUUGGGCCgg
810527GCCCAAGCUCAAGGCCUUCtt1134GAAGGCCUUGAGCUUGGGCcg
811528CCCAAGCUCAAGGCCUUCCtt1135GGAAGGCCUUGAGCUUGGGcc
812529CCAAGCUCAAGGCCUUCCUtt1136AGGAAGGCCUUGAGCUUGGgc
813530CAAGCUCAAGGCCUUCCUGtt1137CAGGAAGGCCUUGAGCUUGgg
814531AAGCUCAAGGCCUUCCUGGtt1138CCAGGAAGGCCUUGAGCUUgg
815532AGCUCAAGGCCUUCCUGGCtt1139GCCAGGAAGGCCUUGAGCUtg
816533GCUCAAGGCCUUCCUGGCCtt1140GGCCAGGAAGGCCUUGAGCtt
817534CUCAAGGCCUUCCUGGCCUtt1141AGGCCAGGAAGGCCUUGAGct
818535UCAAGGCCUUCCUGGCCUCtt1142GAGGCCAGGAAGGCCUUGAgc
819536CAAGGCCUUCCUGGCCUCCtt1143GGAGGCCAGGAAGGCCUUGag
820537AAGGCCUUCCUGGCCUCCCtt1144GGGAGGCCAGGAAGGCCUUga
837538CCCUGAGUACGUGAACCUCtt1145GAGGUUCACGUACUCAGGGga
838539CCUGAGUACGUGAACCUCCtt1146GGAGGUUCACGUACUCAGGgg
839540CUGAGUACGUGAACCUCCCtt1147GGGAGGUUCACGUACUCAGgg
856541CCCAUCAAUGGCAACGGGAtt1148UCCCGUUGCCAUUGAUGGGga
857542CCAUCAAUGGCAACGGGAAtt1149UUCCCGUUGCCAUUGAUGGgg
858543CAUCAAUGGCAACGGGAAAtt1150UUUCCCGUUGCCAUUGAUGgg
859544AUCAAUGGCAACGGGAAACtt1151GUUUCCCGUUGCCAUUGAUgg
860545UCAAUGGCAACGGGAAACAtt1152UGUUUCCCGUUGCCAUUGAtg
861546CAAUGGCAACGGGAAACAGtt1153CUGUUUCCCGUUGCCAUUGat
862547AAUGGCAACGGGAAACAGUtt1154ACUGUUUCCCGUUGCCAUUga
863548AUGGCAACGGGAAACAGUGtt1155CACUGUUUCCCGUUGCCAUtg
864549UGGCAACGGGAAACAGUGAtt1156UCACUGUUUCCCGUUGCCAtt
865550GGCAACGGGAAACAGUGAGtt1157CUCACUGUUUCCCGUUGCCat
866551GCAACGGGAAACAGUGAGGtt1158CCUCACUGUUUCCCGUUGCca
867552CAACGGGAAACAGUGAGGGtt1159CCCUCACUGUUUCCCGUUGcc
868553AACGGGAAACAGUGAGGGUtt1160ACCCUCACUGUUUCCCGUUgc
869554ACGGGAAACAGUGAGGGUUtt1161AACCCUCACUGUUUCCCGUtg
870555CGGGAAACAGUGAGGGUUGtt1162CAACCCUCACUGUUUCCCGtt
871556GGGAAACAGUGAGGGUUGGtt1163CCAACCCUCACUGUUUCCCgt
872557GGAAACAGUGAGGGUUGGGtt1164CCCAACCCUCACUGUUUCCcg
891558GGGACUCUGAGCGGGAGGCtt1165GCCUCCCGCUCAGAGUCCCcc
892559GGACUCUGAGCGGGAGGCAtt1166UGCCUCCCGCUCAGAGUCCcc
894560ACUCUGAGCGGGAGGCAGAtt1167UCUGCCUCCCGCUCAGAGUcc
896561UCUGAGCGGGAGGCAGAGUtt1168ACUCUGCCUCCCGCUCAGAgt
897562CUGAGCGGGAGGCAGAGUUtt1169AACUCUGCCUCCCGCUCAGag
898563UGAGCGGGAGGCAGAGUUUtt1170AAACUCUGCCUCCCGCUCAga
899564GAGCGGGAGGCAGAGUUUGtt1171CAAACUCUGCCUCCCGCUCag
900565AGCGGGAGGCAGAGUUUGCtt1172GCAAACUCUGCCUCCCGCUca
901566GCGGGAGGCAGAGUUUGCCtt1173GGCAAACUCUGCCUCCCGCtc
902567CGGGAGGCAGAGUUUGCCUtt1174AGGCAAACUCUGCCUCCCGct
903568GGGAGGCAGAGUUUGCCUUtt1175AAGGCAAACUCUGCCUCCCgc
904569GGAGGCAGAGUUUGCCUUCtt1176GAAGGCAAACUCUGCCUCCcg
905570GAGGCAGAGUUUGCCUUCCtt1177GGAAGGCAAACUCUGCCUCcc
906571AGGCAGAGUUUGCCUUCCUtt1178AGGAAGGCAAACUCUGCCUcc
907572GGCAGAGUUUGCCUUCCUUtt1179AAGGAAGGCAAACUCUGCCtc
908573GCAGAGUUUGCCUUCCUUUtt1180AAAGGAAGGCAAACUCUGCct
909574CAGAGUUUGCCUUCCUUUCtt1181GAAAGGAAGGCAAACUCUGcc
910575AGAGUUUGCCUUCCUUUCUtt1182AGAAAGGAAGGCAAACUCUgc
911576GAGUUUGCCUUCCUUUCUCtt1183GAGAAAGGAAGGCAAACUCtg
912577AGUUUGCCUUCCUUUCUCCtt1184GGAGAAAGGAAGGCAAACUct
913578GUUUGCCUUCCUUUCUCCAtt1185UGGAGAAAGGAAGGCAAACtc
914579UUUGCCUUCCUUUCUCCAGtt1186CUGGAGAAAGGAAGGCAAAct
915580UUGCCUUCCUUUCUCCAGGtt1187CCUGGAGAAAGGAAGGCAAac
916581UGCCUUCCUUUCUCCAGGAtt1188UCCUGGAGAAAGGAAGGCAaa
917582GCCUUCCUUUCUCCAGGACtt1189GUCCUGGAGAAAGGAAGGCaa
918583CCUUCCUUUCUCCAGGACCtt1190GGUCCUGGAGAAAGGAAGGca
919584CUUCCUUUCUCCAGGACCAtt1191UGGUCCUGGAGAAAGGAAGgc
920585UUCCUUUCUCCAGGACCAAtt1192UUGGUCCUGGAGAAAGGAAgg
921586UCCUUUCUCCAGGACCAAUtt1193AUUGGUCCUGGAGAAAGGAag
922587CCUUUCUCCAGGACCAAUAtt1194UAUUGGUCCUGGAGAAAGGaa
923588CUUUCUCCAGGACCAAUAAtt1195UUAUUGGUCCUGGAGAAAGga
924589UUUCUCCAGGACCAAUAAAtt1196UUUAUUGGUCCUGGAGAAAgg
925590UUCUCCAGGACCAAUAAAAtt1197UUUUAUUGGUCCUGGAGAAag
926591UCUCCAGGACCAAUAAAAUtt1198AUUUUAUUGGUCCUGGAGAaa
927592CUCCAGGACCAAUAAAAUUtt1199AAUUUUAUUGGUCCUGGAGaa
928593UCCAGGACCAAUAAAAUUUtt1200AAAUUUUAUUGGUCCUGGAga
929594CCAGGACCAAUAAAAUUUCtt1201GAAAUUUUAUUGGUCCUGGag
930595CAGGACCAAUAAAAUUUCUtt1202AGAAAUUUUAUUGGUCCUGga
931596AGGACCAAUAAAAUUUCUAtt1203UAGAAAUUUUAUUGGUCCUgg
932597GGACCAAUAAAAUUUCUAAtt1204UUAGAAAUUUUAUUGGUCCtg
933598GACCAAUAAAAUUUCUAAGtt1205CUUAGAAAUUUUAUUGGUCct
934599ACCAAUAAAAUUUCUAAGAtt1206UCUUAGAAAUUUUAUUGGUcc
935600CCAAUAAAAUUUCUAAGAGtt1207CUCUUAGAAAUUUUAUUGGtc
936601CAAUAAAAUUUCUAAGAGAtt1208UCUCUUAGAAAUUUUAUUGgt
937602AAUAAAAUUUCUAAGAGAGtt1209CUCUCUUAGAAAUUUUAUUgg
938603AUAAAAUUUCUAAGAGAGCtt1210GCUCUCUUAGAAAUUUUAUtg
939604UAAAAUUUCUAAGAGAGCUtt1211AGCUCUCUUAGAAAUUUUAtt
940605AAAAUUUCUAAGAGAGCUAtt1212UAGCUCUCUUAGAAAUUUUat
941606AAAUUUCUAAGAGAGCUAAtt1213UUAGCUCUCUUAGAAAUUUta
942607AAUUUCUAAGAGAGCUAAAtt1214UUUAGCUCUCUUAGAAAUUtt
943608AUUUCUAAGAGAGCUAAAAtt1215UUUUAGCUCUCUUAGAAAUtt
TABLE 2 — RNAi molecule sequences for GST-7c
SEQSENSE STRANDSEQANTISENSE STRAND
RefID(5′-->3′)ID(5′-->3′)
IDPosNOSEQ ID NOS: 1216 to 1280NOSEQ ID NOS: 1281 to 1345
A16521216UCCCAGAACCAGGGAGGCAtt1281UGCCUCCCUGGUUCUGGGAca
A106351217CUUUUGAGACCCUGCUGUCtt1282GACAGCAGGGUCUCAAAAGgc
A116491218CUGUCCCAGAACCAGGGAGtt1283CUCCCUGGUUCUGGGACAGca
A126501219UGUCCCAGAACCAGGGAGGtt1284CCUCCCUGGUUCUGGGACAgc
A136311220AAGCCUUUUGAGACCCUGCtt1285GCAGGGUCUCAAAAGGCUUca
A146381221UUGAGACCCUGCUGUCCCAtt1286UGGGACAGCAGGGUCUCAAaa
A156361222UUUUGAGACCCUGCUGUCCtt1287GGACAGCAGGGUCUCAAAAgg
A166401223GAGACCCUGCUGUCCCAGAtt1288UCUGGGACAGCAGGGUCUCaa
A173321224GCUGGAAGGAGGAGGUGGUtt1289ACCACCUCCUCCUUCCAGCtc
A183331225CUGGAAGGAGGAGGUGGUGtt1290CACCACCUCCUCCUUCCAGct
A193211226UCAGGGCCAGAGCUGGAAGtt1291CUUCCAGCUCUGGCCCUGAtc
A26391227UGAGACCCUGCUGUCCCAGtt1292CUGGGACAGCAGGGUCUCAaa
A203231228AGGGCCAGAGCUGGAAGGAtt1293UCCUUCCAGCUCUGGCCCUga
A213311229AGCUGGAAGGAGGAGGUGGtt1294CCACCUCCUCCUUCCAGCUct
A226411230AGACCCUGCUGUCCCAGAAtt1295UUCUGGGACAGCAGGGUCUca
A233301231GAGCUGGAAGGAGGAGGUGtt1296CACCUCCUCCUUCCAGCUCtg
A256471232UGCUGUCCCAGAACCAGGGtt1297CCCUGGUUCUGGGACAGCAgg
A266531233CCCAGAACCAGGGAGGCAAtt1298UUGCCUCCCUGGUUCUGGGac
A36541234CCAGAACCAGGGAGGCAAGtt1299CUUGCCUCCCUGGUUCUGGga
A46371235UUUGAGACCCUGCUGUCCCtt1300GGGACAGCAGGGUCUCAAAag
AS6421236GACCCUGCUGUCCCAGAACtt1301GUUCUGGGACAGCAGGGUCtc
A63191237GAUCAGGGCCAGAGCUGGAtt1302UCCAGCUCUGGCCCUGAUCtg
A76321238AGCCUUUUGAGACCCUGCUtt1303AGCAGGGUCUCAAAAGGCUtc
A86331239GCCUUUUGAGACCCUGCUGtt1304CAGCAGGGUCUCAAAAGGCtt
A96341240CCUUUUGAGACCCUGCUGUtt1305ACAGCAGGGUCUCAAAAGGct
AG76321241CGCCUUUUGAGACCCUGCAtt1306UGCAGGGUCUCAAAAGGCGtc
AK12571242CCUACACCGUGGUCUAUUUtt1307AAAUAGACCACGGUGUAGGgc
AK106811243UGUGGGAGACCAGAUCUCCtt1308GGAGAUCUGGUCUCCCACAat
AK119011244GCGGGAGGCAGAGUUUGCCtt1309GGCAAACUCUGCCUCCCGCtc
AK129221245CCUUUCUCCAGGACCAAUAtt1310UAUUGGUCCUGGAGAAAGGaa
AK13/6431246ACCCUGCUGUCCCAGAACCtt1311GGUUCUGGGACAGCAGGGUct
A24
AK22671247GGUCUAUUUCCCAGUUCGAtt1312UCGAACUGGGAAAUAGACCac
AK35121248CCCUGGUGGACAUGGUGAAtt1313UUCACCAUGUCCACCAGGGct
AK45601249ACAUCUCCCUCAUCUACACtt1314GUGUAGAUGAGGGAGAUGUat
AK55931250GCAAGGAUGACUAUGUGAAtt1315UUCACAUAGUCAUCCUUGCcc
AK66981251CCUUCGCUGACUACAACCUtt1316AGGUUGUAGUCAGCGAAGGag
AK73131252CUGGCAGAUCAGGGCCAGAtt1317UCUGGCCCUGAUCUGCCAGca
AK84211253GACGGAGACCUCACCCUGUtt1318ACAGGGUGAGGUCUCCGUCct
AK95901254CGGGCAAGGAUGACUAUGUtt1319ACAUAGUCAUCCUUGCCCGcc
AU106351255CUUUUGAGACCCUGCUGUAtt1320UACAGCAGGGUCUCAAAAGgc
AU233301256GAGCUGGAAGGAGGAGGUAtt1321UACCUCCUCCUUCCAGCUCtg
AU246431257ACCCUGCUGUCCCAGAACAtt1322UGUUCUGGGACAGCAGGGUct
AU256481258UGCUGUCCCAGAACCAGGAtt1323UCCUGGUUCUGGGACAGCAgg
AU76321259AGCCUUUUGAGACCCUGCAtt1324UGCAGGGUCUCAAAAGGCUtc
AU96341260CCUUUUGAGACCCUGCUGAtt1325UCAGCAGGGUCUCAAAAGGct
B16291261UGAAGCCUUUUGAGACCCUtt1326AGGGUCUCAAAAGGCUUCAgt
B106271262ACUGAAGCCUUUUGAGACCtt1327GGUCUCAAAAGGCUUCAGUtg
B115961263AGGAUGACUAUGUGAAGGCtt1328GCCUUCACAUAGUCAUCCUtg
B125971264GGAUGACUAUGUGAAGGCAtt1329UGCCUUCACAUAGUCAUCCtt
B135981265GAUGACUAUGUGAAGGCACtt1330GUGCCUUCACAUAGUCAUCct
B145641266CUCCCUCAUCUACACCAACtt1331GUUGGUGUAGAUGAGGGAGat
B26301267GAAGCCUUUUGAGACCCUGtt1332CAGGGUCUCAAAAGGCUUCag
B35631268UCUCCCUCAUCUACACCAAtt1333UUGGUGUAGAUGAGGGAGAtg
B45671269CCUCAUCUACACCAACUAUtt1334AUAGUUGGUGUAGAUGAGGga
B55661270CCCUCAUCUACACCAACUAtt1335UAGUUGGUGUAGAUGAGGGag
B66251271CAACUGAAGCCUUUUGAGAtt1336UCUCAAAAGGCUUCAGUUGcc
B76261272AACUGAAGCCUUUUGAGACtt1337GUCUCAAAAGGCUUCAGUUgc
B86281273CUGAAGCCUUUUGAGACCCtt1338GGGUCUCAAAAGGCUUCAGtt
B95651274UCCCUCAUCUACACCAACUtt1339AGUUGGUGUAGAUGAGGGAga
BG35631275GCUCCCUCAUCUACACCAAtt1340UUGGUGUAGAUGAGGGAGCtg
BU026311276GAAGCCUUUUGAGACCCUAtt1341UAGGGUCUCAAAAGGCUUCag
BU106271277ACUGAAGCCUUUUGAGACAtt1342UGUCUCAAAAGGCUUCAGUtg
BU145651278CUCCCUCAUCUACACCAAAtt1343UUUGGUGUAGAUGAGGGAGat
BU45671279CCUCAUCUACACCAACUAAtt1344UUAGUUGGUGUAGAUGAGGga
Cl-9341280ACCAAUAAAAUUUCUAAGAtt1345UCUUAGAAAUUUUAUUGGUcc
934
TABLE 3 — Dose dependent knockdown for GST-π mRNA in an A549 cell line
siRNAIC50 (pM)
A927, 29
B2121
B3235
B4229
B1323, 34
BU0221, 25, 34

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6 codes
IPC · International Patent Classification
Section A — Human necessities
  • A61K31/713
Section C — Chemistry; metallurgy
  • C07H21/02
  • C12N15/113
  • C07F9/6533
  • C12Q1/02
Section G — Physics
  • G01N33/58

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⤢ drag to zoomJan 2016Apr 2016Jul 2016Oct 2016Jan 2017Apr 2017Jul 2017Oct 2017Jan 2018Apr 2018Jul 2018Oct 2018USPTOApplicantNon-final rejectionResponse after non-finalFinal rejectionNotice of appeal filedNotice of allowanceRequest for continued examination
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Richard A Schnizer
art unit 1674 · TC 1600
Citations: 72 back · 5 forward

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