IP Library Patent Application 14401237
Patent Application
App. No. 14/401,237

COMPOSITIONS AND METHODS FOR MODULATING MECP2 EXPRESSION

Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US None
App. No.
14/401,237
Abstract

Aspects of the invention provide single stranded oligonucleotides for activating or enhancing expression of MECP2. Further aspects provide compositions and kits comprising single stranded oligonucleotides for activating or enhancing expression of MECP2. Methods for modulating expression of MECP2 using the single stranded oligonucleotides are also provided. Further aspects of the invention provide methods for selecting a candidate oligonucleotide for activating or enhancing expression of MECP2.

Claims (44)

1 . A single stranded oligonucleotide having a sequence 5′-X—Y—Z, wherein X is any nucleotide, Y is a nucleotide sequence of 6 nucleotides in length that is not a seed sequence of a human microRNA, and Z is a nucleotide sequence of 1-23 nucleotides in length, wherein the single stranded oligonucleotide is complementary with at least 8 consecutive nucleotides of a PRC2-associated region of a MECP2 gene.

2 . The single stranded oligonucleotide of claim 1 , wherein the oligonucleotide does not comprise three or more consecutive guanosine nucleotides.

3 . The single stranded oligonucleotide of claim 1 , wherein the oligonucleotide does not comprise four or more consecutive guanosine nucleotides.

4 . The single stranded oligonucleotide of claim 1 , wherein the oligonucleotide is 8 to 30 nucleotides in length.

5 . The single stranded oligonucleotide of claim 1 , wherein the oligonucleotide is 8 to 10 nucleotides in length and all but 1, 2, or 3 of the nucleotides of the complementary sequence of the PRC2-associated region are cytosine or guanosine nucleotides.

6 . The single stranded oligonucleotide of claim 1 , wherein at least one nucleotide of the oligonucleotide is a nucleotide analogue.

7 . The single stranded oligonucleotide of claim 7 , wherein the at least one nucleotide analogue results in an increase in Tm of the oligonucleotide in a range of 1 to 5° C. compared with an oligonucleotide that does not have the at least one nucleotide analogue.

8 . The single stranded oligonucleotide of claim 1 , wherein at least one nucleotide of the oligonucleotide comprises a 2′ O-methyl.

9 . The single stranded oligonucleotide of claim 1 , wherein each nucleotide of the oligonucleotide comprises a 2′ O-methyl.

10 . The single stranded oligonucleotide of claim 1 , wherein the oligonucleotide comprises at least one ribonucleotide, at least one deoxyribonucleotide, or at least one bridged nucleotide.

11 . The single strand oligonucleotide of claim 10 , wherein the bridged nucleotide is a LNA nucleotide, a cEt nucleotide or a ENA modified nucleotide.

12 . The single stranded oligonucleotide of claim 1 , wherein each nucleotide of the oligonucleotide is a LNA nucleotide.

13 . The single stranded oligonucleotide of claim 1 , wherein the nucleotides of the oligonucleotide comprise alternating deoxyribonucleotides and 2′-fluoro-deoxyribonucleotides.

14 . The single stranded oligonucleotide of claim 1 , wherein the nucleotides of the oligonucleotide comprise alternating deoxyribonucleotides and 2′-O-methyl nucleotides.

15 . The single stranded oligonucleotide of claim 1 , wherein the nucleotides of the oligonucleotide comprise alternating deoxyribonucleotides and ENA nucleotide analogues.

16 . The single stranded oligonucleotide of claim 1 , wherein the nucleotides of the oligonucleotide comprise alternating deoxyribonucleotides and LNA nucleotides.

17 . The single stranded oligonucleotide of claim 13 , wherein the 5′ nucleotide of the oligonucleotide is a deoxyribonucleotide.

18 . The single stranded oligonucleotide of claim 1 , wherein the nucleotides of the oligonucleotide comprise alternating LNA nucleotides and 2′-O-methyl nucleotides.

19 . The single stranded oligonucleotide of claim 18 , wherein the 5′ nucleotide of the oligonucleotide is a LNA nucleotide.

20 . The single stranded oligonucleotide of claim 1 , wherein the nucleotides of the oligonucleotide comprise deoxyribonucleotides flanked by at least one LNA nucleotide on each of the 5′ and 3′ ends of the deoxyribonucleotides.

21 . The single stranded oligonucleotide of claim 1 , further comprising phosphorothioate internucleotide linkages between at least two nucleotides.

22 . The single stranded oligonucleotide of claim 21 , further comprising phosphorothioate internucleotide linkages between all nucleotides.

23 . The single stranded oligonucleotide of claim 1 , wherein the nucleotide at the 3′ position of the oligonucleotide has a 3′ hydroxyl group.

24 . The single stranded oligonucleotide of claim 1 , wherein the nucleotide at the 3′ position of the oligonucleotide has a 3′ thiophosphate.

25 . The single stranded oligonucleotide of claim 1 , further comprising a biotin moiety conjugated to the 5′ nucleotide.

26 . A single stranded oligonucleotide comprising a region of complementarity that is complementary with at least 8 consecutive nucleotides of a PRC2-associated region of a MECP2 gene, wherein the oligonucleotide has at least one of:

a) a sequence that is 5′X—Y—Z, wherein X is any nucleotide and wherein X is anchored at the 5′ end of the oligonucleotide, Y is a nucleotide sequence of 6 nucleotides in length that is not a human seed sequence of a microRNA, and Z is a nucleotide sequence of 1 to 23 nucleotides in length;

b) a sequence that does not comprise three or more consecutive guanosine nucleotides;

c) a sequence that has less than a threshold level of sequence identity with every sequence of nucleotides, of equivalent length to the second nucleotide sequence, that are between 50 kilobases upstream of a 5′-end of an off-target gene and 50 kilobases downstream of a 3′-end of the off-target gene;

d) a sequence that is complementary to a PRC2-associated region that encodes an RNA that forms a secondary structure comprising at least two single stranded loops; and/or

e) a sequence that has greater than 60% G-C content.

27 . The single stranded oligonucleotide of claim 26 , wherein the oligonucleotide has the sequence 5′X—Y—Z and wherein the oligonucleotide is 8-50 nucleotides in length.

28 . A composition comprising a single stranded oligonucleotide of claim 1 and a carrier.

29 . A composition comprising a single stranded oligonucleotide of claim 1 in a buffered solution.

30 . A composition of claim 28 , wherein the oligonucleotide is conjugated to the carrier.

31 . The composition of claim 30 , wherein the carrier is a peptide.

32 . The composition of claim 30 , wherein the carrier is a steroid.

33 . A pharmaceutical composition comprising a composition of claim 28 and a pharmaceutically acceptable carrier.

34 . A kit comprising a container housing the composition of claim 28 .

35 . A method of increasing expression of a MECP2 gene in a cell, the method comprising delivering the single stranded oligonucleotide of claim 1 into the cell.

36 . The method of claim 35 , wherein delivery of the single stranded oligonucleotide into the cell results in a level of expression of the MECP2 gene that is at least 50% greater than a level of expression of the MECP2 gene in a control cell that does not comprise the single stranded oligonucleotide.

37 . A method increasing levels of a MECP2 gene in a subject, the method comprising administering the single stranded oligonucleotide of claim 1 to the subject.

38 . A method of treating a condition associated with decreased levels of a MECP2 gene in a subject, the method comprising administering the single stranded oligonucleotide of claim 1 to the subject.

39 . The method of claim 38 , wherein the condition is Rett Syndrome, MECP2-related severe neonatal encephalopathy, Angelman syndrome, or PPM-X syndrome.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2016
From: KRIEG, ARTHUR M.; SUBRAMANIAN, ROMESH; MCSWIGGEN, JAMES
To: RANA THERAPEUTICS, INC.
Reel/Frame 037877/0465 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2016
From: LEE, JEANNIE T.
To: HOWARD HUGHES MEDICAL INSTITUTE
Reel/Frame 037877/0508 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2016
From: LEE, JEANNIE T.; HOWARD HUGHES MEDICAL INSTITUTE
To: THE GENERAL HOSPITAL CORPORATION D/B/A MASSACHUSETTS GENERAL HOSPITAL
Reel/Frame 037877/0528 →