US2021139891A1PendingUtilityA1
Modified guide rnas, crispr-ribonucleotprotein complexes and methods of use
Assignee: WISCONSIN ALUMNI RES FOUNDPriority: Jun 14, 2017Filed: Dec 14, 2020Published: May 13, 2021
Est. expiryJun 14, 2037(~10.9 yrs left)· nominal 20-yr term from priority
C12N 2310/531C12N 15/113C12N 2310/3519C12N 2310/20C12N 2310/16C12N 15/111C12N 15/102C12N 9/22C12N 15/11C12N 15/907C12N 2800/80C12N 9/226C12N 9/224
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Claims
Abstract
Described herein are modified guide RNAs such as a single guide RNA including, from 5′ to 3′, a single-stranded protospacer sequence, a first complementary strand of a binding region for the Cas9 polypeptide, an aptamer that binds a biotin-binding molecule, and a second complementary strand of the binding region for the Cas9 polypeptide. Also described is an RNP complex including the modified guide RNA and a Cas9 polypeptide or active fragment thereof. Also included are methods of modifying target genes in cells using the modified guide RNAs.
Claims
exact text as granted — not AI-modified1 . A ribonucleoprotein (RNP) complex, comprising
a modified guide RNA comprising,
a crRNA comprising a single-stranded protospacer sequence and a first complementary strand of a binding region for a Cas9 polypeptide,
a tracrRNA comprising a second complementary strand of the binding region for the Cas9 polypeptide,
wherein the crRNA or the tracrRNA comprises a nucleic acid aptamer that binds a biotin-binding molecule,
wherein the crRNA and the tracrRNA hybridize through the first and second complementary strands of the binding region for the Cas9 polypeptide;
the biotin-binding molecule; and the Cas9 polypeptide or an active fragment thereof, wherein the Cas9 polypeptide or active fragment thereof is active for guide RNA binding, and has an active, inactive or partially inactive nuclease domain.
2 . The RNP complex of claim 1 , wherein the biotin-binding molecule has one, two or four biotin binding sites, and wherein the biotin-binding molecule optionally comprises a fluorescent label.
3 . The RNP complex of claim 1 , further comprising a biotinylated molecule.
4 . The RNP complex of claim 3 , wherein the biotinylated molecule is a biotinylated donor polynucleotide.
5 . The RNP complex of claim 4 , wherein the biotinylated donor polynucleotide comprises single-stranded DNA, double-stranded DNA, RNA, or a duplex of RNA and DNA.
6 . The RNP complex of claim 4 , wherein the donor polynucleotide includes a mutation, deletion, alteration, integration, gene correction, gene replacement, transgene insertion, nucleotide deletion, gene disruption, and/or gene mutation in a target nucleic acid.
7 . The RNP complex of claim 3 , wherein the biotinylated molecule comprises a biotinylated nanoparticle, dye, contrast agent, or peptide.
8 . The RNP complex of claim 7 , wherein the nanoparticle is a quantum dot, a gold particle, a magnetic particle, or a polymeric nanoparticle.
9 . The RNP complex of claim 4 , wherein the biotin-binding molecule is covalently linked to the donor polynucleotide, either directly or via a linker molecule.
10 . The RNP complex of claim 9 , wherein the donor polynucleotide comprises single-stranded DNA, double-stranded DNA, RNA, or a duplex of RNA and DNA.
11 . The RNP complex of claim 10 , wherein the donor polynucleotide includes a mutation, deletion, alteration, integration, gene correction, gene replacement, transgene insertion, nucleotide deletion, gene disruption, and/or gene mutation in a target nucleic acid.
12 . A method of modifying a target nucleic acid in a cell, comprising
delivering to the cell an RNP complex, the RNP complex comprising
a crRNA comprising a single-stranded protospacer sequence and a first complementary strand of a binding region for a Cas9 polypeptide,
a tracrRNA comprising a second complementary strand of the binding region for the Cas9 polypeptide,
wherein the crRNA or the tracrRNA comprises a nucleic acid aptamer that binds a biotin-binding molecule,
wherein the crRNA and the tracrRNA hybridize through the first and second complementary strands of the binding region for the Cas9 polypeptide;
the biotin-binding molecule; and the Cas9 polypeptide or an active fragment thereof, wherein the Cas9 polypeptide or active fragment thereof is active for guide RNA binding, and has an active, inactive or partially inactive nuclease domain.
13 . The method of claim 12 , wherein modifying the target nucleic acid increases or decreases expression of a gene product of the target nucleic acid.
14 . The method of claim 12 , further comprising delivering a donor polynucleotide to the cell, and wherein modifying the target nucleic acid comprises homology-directed repair (HDR).
15 . The method of claim 12 , further comprising delivering a donor polynucleotide to the cell, and wherein modifying the target nucleic acid comprises addition of a genetically encoded functionality, or correction of a mutation in the target nucleic acid.
16 . The method of claim 12 , wherein modifying the target nucleic acid creates a double strand break (DSB) which is repaired by a non-homologous end joining (NHEJ) cell repair mechanism generating indels thereby modifying the polynucleotide sequence of the target nucleic acid.
17 . The method of claim 12 , further comprising delivering a donor polynucleotide to the cell, and wherein modifying the target nucleic acid creates a DSB which is repaired by a HDR cell repair mechanism incorporating a donor DNA sequence thereby modifying the polynucleotide sequence of the target nucleic acid.
18 . The method of claim 12 , further comprising delivering a biotinylated molecule, wherein the biotinylated molecule targets the RNP complex to a specific cell type, organ or tissue.
19 . A method of modifying a target nucleic acid in a cell, comprising delivering to the cell two RNP complexes, wherein each RNP complex comprises
a crRNA comprising a single-stranded protospacer sequence and a first complementary strand of a binding region for a Cas9 polypeptide, a tracrRNA comprising a second complementary strand of the binding region for the Cas9 polypeptide, wherein the crRNA or the tracrRNA comprises a nucleic acid aptamer that binds a biotin-binding molecule, wherein the crRNA and the tracrRNA hybridize through the first and second complementary strands of the binding region for the Cas9 polypeptide; the biotin-binding molecule; and the Cas9 polypeptide or an active fragment thereof, wherein the Cas9 polypeptide or active fragment thereof is active for guide RNA binding, and has an active, inactive or partially inactive nuclease domain.
20 . The method of claim 19 , further comprising delivering a donor polynucleotide to the cell, wherein the donor polynucleotide comprises a gene correction relative to the sequence of the target nucleic acid, thereby providing multiple allelic correction of the target nucleic acid, or excision of target DNA from the target nucleic acid.
21 . The method of claim 19 , further comprising delivering a donor polynucleotide to the cell, wherein the donor polynucleotide comprises a gene correction relative to the sequence of the target nucleic acid, thereby providing multiple allelic correction of the target nucleic acid.
22 . The method of claim 19 , wherein modifying the target nucleic acid provides excision of genomic DNA.
23 . The method of claim 19 , wherein each RNP complex further comprises a biotinylated molecule.
24 . A method of modifying a target nucleic acid in a cell, the cell comprising a Cas9 polypeptide, wherein the Cas9 polypeptide is active for guide RNA binding, and has an active, inactive or partially inactive nuclease domain, the method comprising
delivering to the cell a modified guide RNA, the modified guide RNA comprising,
a crRNA comprising a single-stranded protospacer sequence and a first complementary strand of a binding region for a Cas9 polypeptide,
a tracrRNA comprising a second complementary strand of the binding region for the Cas9 polypeptide,
wherein the crRNA or the tracrRNA comprises a nucleic acid aptamer that binds a biotin-binding molecule,
wherein the crRNA and the tracrRNA hybridize through the first and second complementary strands of the binding region for the Cas9 polypeptide;
wherein the modified guide RNA is associated with the biotin-binding molecule; and wherein the single-stranded protospacer sequence of the modified guide RNA hybridizes to a sequence in the target nucleic acid to be modified.
25 . The method of claim 24 , wherein two modified guide RNAs are delivered to the cell, and wherein each of the modified guide RNAs hybridizes to a different nucleic acid sequence.
26 . The method of claim 24 , further comprising delivering a donor polynucleotide to the cell, wherein the donor polynucleotide comprises a gene correction relative to the sequence of the target nucleic acid, thereby providing multiple allelic correction of the target nucleic acid, or excision of target DNA from the target nucleic acid.
27 . A kit comprising
a modified guide RNA, the modified guide RNA comprising,
a crRNA comprising a single-stranded protospacer sequence and a first complementary strand of a binding region for a Cas9 polypeptide,
a tracrRNA comprising a second complementary strand of the binding region for the Cas9 polypeptide,
wherein the crRNA or the tracrRNA comprises a nucleic acid aptamer that binds a biotin-binding molecule,
wherein the crRNA and the tracrRNA hybridize through the first and second complementary strands of the binding region for the Cas9 polypeptide;
a biotin-binding molecule; a Cas9 polypeptide, and a biotinylated molecule.
28 . A method of modifying a target nucleic acid in a cell, comprising
delivering to the cell a vector expressing a modified guide RNA, a vector expressing a Cas9 polypeptide, an avidin, and a biotinylated donor DNA template, the modified guide RNA comprising,
a crRNA comprising a single-stranded protospacer sequence and a first complementary strand of a binding region for a Cas9 polypeptide,
a tracrRNA comprising a second complementary strand of the binding region for the Cas9 polypeptide,
wherein the crRNA or the tracrRNA comprises a nucleic acid aptamer that binds a biotin-binding molecule,
wherein the crRNA and the tracrRNA hybridize through the first and second complementary strands of the binding region for the Cas9 polypeptide
wherein the single-stranded protospacer sequence of the modified guide RNA hybridizes to a sequence in the target nucleic acid to be modified.
29 . The method of claim 28 , wherein the cell is a human cell.
30 . The method of claim 29 , wherein the human cell is a human pluripotent stem cell line, or a primary blood cell.Join the waitlist — get patent alerts
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