Targeted RNA editing
RNA editing is achieved using oligonucleotide constructs comprising (i) a targeting portion specific for a target nucleic acid sequence to be edited and (ii) a recruiting portion capable of binding and recruiting a nucleic acid editing entity naturally present in the cell. The nucleic acid editing entity, such as ADAR, is redirected to a preselected target site by means of the targeting portion, thereby promoting editing of preselected nucleotide residues in a region of the target RNA which corresponds to the targeting portion.
1. A method for making a change in a target RNA sequence in a human cell, comprising the steps of:
(i) introducing into the cell an oligonucleotide construct that is sufficiently complementary to the target RNA sequence, wherein the target RNA sequence comprises a target adenosine;
(ii) allowing the formation of a double-stranded structure of the oligonucleotide construct with the target RNA sequence upon base pairing;
(iii) allowing the double-stranded structure of the oligonucleotide and the target RNA sequence to recruit an hADAR1 or hADAR2 enzyme that is naturally present in the cell; and
(iv) allowing the hADAR1 or hADAR2 enzyme to perform an editing reaction on the target adenosine in the target RNA sequence,
wherein the oligonucleotide construct comprises a cytidine opposite the target adenosine.
2. The method of claim 1 , further comprising the step of: (v) identifying the presence of the change in the target RNA sequence.
3. The method of claim 1 , wherein the cytidine opposite the target adenosine is not 2′-OMe modified.
4. The method of claim 3 , wherein at least one nucleotide in the oligonucleotide construct comprises a 2′-O modified ribose.
5. The method of claim 4 , wherein the 2′-O modified ribose is modified by a substitution with a lower alkyl (C1-4), an alkenyl (C2-4), an alkynyl (C2-4), an alkoxy alkyl, a 3,3′-dimethylallyl, or a locked nucleic acid group.
6. The method of claim 4 , wherein the 2′-O modified ribose is modified by a substitution with 2′-OMe or 2′-MOE.
7. The method of claim 1 , wherein a phosphodiester group of the backbone of the oligonucleotide construct is modified by a phosphorothioate, phosphorodithioate, or phosphoroamidate internucleoside linkage.
8. The method of claim 1 , wherein the oligonucleotide construct is between 20 and 100 nucleotides in length, between 24 and 60 nucleotides in length, or between 30 and 50 nucleotides in length.
9. The method of claim 1 , wherein the change in the target RNA sequence is conducted in vivo or ex vivo.
10. The method of claim 1 , wherein the change in the target RNA sequence treats a genetic disease in a human subject in need thereof wherein the genetic disease is selected from the group consisting of alpha-1-antitrypsin deficiency, Hurler Syndrome, and Parkinson's disease.
11. The method of claim 1 , wherein the human cell is a skin cell, a lung cell, a heart cell, a kidney cell, a liver cell, a pancreas cell, a gut cell, a muscle cell, a gland cell, an eye cell, a brain cell, or a blood cell.
12. The method of claim 1 , wherein the human cell is a stem cell.
13. The method of claim 12 , wherein the stem cell is an embryonic stem cell, a pluripotent stem cell, a totipotent stem cell, or an induced pluripotent stem cell.
14. The method of claim 1 , wherein the target RNA sequence is selected from a pre-messenger RNA, a messenger RNA, a ribosomal RNA, a transfer RNA, or a miRNA.
15. The method of claim 1 , wherein at least one nucleotide in the oligonucleotide construct comprises a chemical modification.
16. The method of claim 1 , wherein the oligonucleotide construct is formulated for intravenous administration.
17. A method for making a change in a target RNA sequence in a human cell, comprising the steps of:
(i) introducing into the cell an oligonucleotide construct that is sufficiently complementary to bind by nucleobase pairing to the target RNA sequence, wherein the target RNA sequence comprises a target adenosine;
(ii) allowing the formation of a double-stranded structure of the oligonucleotide construct with the target RNA sequence upon base pairing;
(iii) allowing the double-stranded structure of the oligonucleotide and the target RNA sequence to recruit an hADAR1 or hADAR2 enzyme naturally present in the cell; and
(iv) allowing the hADAR1 or hADAR2 enzyme to perform deamination of the target adenosine to an inosine in the target RNA sequence.
18. The method of claim 17 , wherein the oligonucleotide construct comprises one or more mismatches or wobble bases with the complementary target RNA sequence.
19. A method for making a change in a target RNA sequence in a human cell, comprising the steps of:
(i) introducing into the cell an oligonucleotide construct that has sufficient overlap and complementarity to the target RNA sequence, wherein the target RNA sequence comprises a target adenosine;
(ii) allowing the formation of a double-stranded structure of the oligonucleotide construct with the target RNA sequence upon base pairing;
(iii) allowing the double-stranded structure of the oligonucleotide and the target RNA sequence to recruit an hADAR1 or hADAR2 enzyme naturally present in the cell; and
(iv) allowing the hADAR1 or hADAR2 enzyme to perform an editing reaction on the target adenosine in the target RNA sequence,
wherein the nucleotide in the oligonucleotide that is opposite the target adenosine is not 2′-OMe modified.