IP Library Granted Patent US 8,907,075
Granted Patent B2
US 8,907,075 · App. 12/570,389 · Granted Dec 9, 2014

Compositions and methods for gene silencing

Inventors: Samuel Ian Gunderson (Piscataway, NJ); Rafal Goraczniak (Hillsborough, NJ)
A61K31/7088C12N15/1135C12N2310/14C12N2310/321C12N2310/11C12N15/1137C12N2310/315C12N2310/3519C12N2310/3231
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Quick Facts
Patent No.
US 8,907,075
App. No.
12/570,389
Granted
Dec 9, 2014
Kind
B2
Abstract

Compositions and methods for modulating the expression of a protein of interest are provided.

Claims (30)

1. A nucleic acid molecule for inhibiting the expression of a gene of interest,

wherein said nucleic acid molecule comprises an annealing domain operably linked to at least one effector domain,

wherein said annealing domain hybridizes to the pre-mRNA of said gene of interest,

wherein said effector domain hybridizes to the U1 snRNA of U1 snRNP and said effector domain comprises a sequence having at least 80% identity with SEQ ID NO: 1, and

wherein said annealing domain is about 10 to about 50 nucleotides in length and is at least 80% complementary to a target sequence in the 3′ terminal exon of the gene of interest.

2. The nucleic acid molecule of claim 1 , wherein said annealing domain is about 10 to about 30 nucleotides in length.

3. The nucleic acid molecule of claim 1 , wherein said effector domain is about 8 to about 20 nucleotides in length.

4. The nucleic acid molecule of claim 1 , wherein said effector domain and annealing domain are linked by a bond.

5. The nucleic acid molecule of claim 1 , wherein said effector domain and annealing domain are linked by a linker domain of about 1 to about 10 nucleotides.

6. The nucleic acid molecule of claim wherein said effector domain comprises the sequence 5′-CAGGUAAGUA-3′ (SEQ ID NO: 1).

7. The nucleic acid molecule of claim 1 , wherein said effector domain comprises the sequence 5′-CAGGUAAGUAU-3′ (SEQ ID NO: 32).

8. The nucleic acid molecule of claim 1 , wherein said effector domain comprises the sequence 5′-GCCAGGUAAGUAU-3′ (SEQ ID NO: 33).

9. The nucleic acid molecule of claim 1 , wherein said nucleic acid molecule comprises at least one nucleotide analog.

10. The nucleic acid molecule of claim 9 , wherein said nucleotide analog is selected from the group consisting of locked nucleic acids and 2′-O-methylnucleotides.

11. The nucleic acid molecule of claim 9 , wherein said nucleotide analog is a phosphorothioate.

12. The nucleic acid molecule of claim 1 , wherein the effector domain is operably linked to the 3′ end of the annealing domain, the 5′ end of the annealing domain, or both the 5′ and 3′ end of the annealing domain.

13. The nucleic acid molecule of claim 1 , wherein said annealing domain comprises a stretch of at least seven deoxyribonucleotides.

14. The nucleic acid molecule of claim 1 , wherein said U1 snRNA is a U1 variant snRNA.

15. A composition comprising at least one nucleic acid molecule of claim 1 and at least one pharmaceutically acceptable carrier.

16. The composition of claim 15 , wherein said composition further comprises at least one siRNA or antisense oligonucleotide directed against said gene of interest.

17. A vector encoding the nucleic acid molecule of claim 1 .

18. The vector of claim 17 , wherein said vector is a viral vector or a plasmid.

19. The nucleic acid molecule of claim 1 , wherein said nucleic acid molecule consists of said annealing domain and said effector domain.

20. The nucleic acid molecule of claim 1 , wherein said annealing domain is at the 5′ end of said nucleic acid molecule and wherein said effector domain is at the 3′ end of said nucleic acid molecule.

21. The nucleic acid molecule of claim 12 , wherein the effector domain is operably linked to the 3′ end of the annealing domain.

22. The nucleic acid molecule of claim 1 , wherein said effector domain hybridizes to the 5′ end of the U1 snRNA of U1 snRNP.

23. The nucleic acid molecule of claim 22 , wherein said effector domain hybridizes to nucleotides 2-11 at the 5′ end of the U1 snRNA of U1 snRNP.

24. The nucleic acid molecule of claim 22 , wherein said effector domain is from about 10 to about 20 nucleotides in length.

25. The nucleic acid molecule of claim 1 , wherein said annealing domain is at least 90% complementary to a target sequence in the 3′ terminal exon of the gene of interest.

26. The nucleic acid molecule of claim 1 , wherein said annealing domain is 100% complementary to a target sequence in the 3′ terminal exon of the gene of interest.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 15, 2016
From: GUNDERSON, SAMUEL; GORACZNIAK, RAFAL
To: RUTGERS, THE STATE UNIVERSITY OF NEW JERSEY
Reel/Frame 040690/0144 →
CONFIRMATORY LICENSE Recorded Apr 13, 2010
From: RUTGERS, THE STATE UNIVERSITY OF NEW JERSEY
To: NATIONAL INSTITUTES OF HEALTH (NIH), U.S. DEPT. OF HEALTH AND HUMAN SERVICES (DHHS), U.S. GOVERNMENT
Reel/Frame 024222/0262 →
Continuity (4)
Continuation In Part PCTUS2008058907 · Mar 31, 2008
Provisional Application 60921032 · Mar 30, 2007
Provisional Application 61144087 · Jan 12, 2009
Related Publication 20100099739A1 · Apr 22, 2010