IP Library › Granted Patent US 10,526,616
Granted Patent B2
US 10,526,616 · App. 15/024,264 · Granted Jan 7, 2020

Nanoparticle-mediated gene delivery, genomic editing and ligand-targeted modification in various cell populations

Inventors: Shiva Prasad Kotha (Mechanicville, NY); Andre Ronald Watson (Troy, NY); Vaibhav A. Pandit (Troy, NY)
Assignee: Rensselaer Polytechnic Institute
C12N15/85A61K47/6455A61K47/6923A61K47/6929C12N15/88A61K48/0041C12N9/22C12N2800/95
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Quick Facts
Patent No.
US 10,526,616
App. No.
15/024,264
Granted
Jan 7, 2020
Kind
B2
Abstract

An improved nanoparticle for transfecting cells is provided. The nanoparticle includes a core polyplex and a silica coating on the core polyplex and, optionally, a polymer attached to an outer surface of the silica coating, where the polyplex includes an anionic polymer, a cationic polymer, a cationic polypeptide, and a polynucleotide. Also provided is an improved method of modifying intracellular polynucleotides. The method includes contacting a cell with a nanoparticle that includes a core polyplex and a silica coating on the core polyplex and, optionally, a polymer attached to an outer surface of the silica coating, where the polyplex includes an anionic polymer, a cationic polymer, a cationic polypeptide, and a polynucleotide.

Claims (34)

1. A nanoparticle comprising:

a core polyplex comprising a cationic polymer, a cationic polypeptide, a polynucleotide, and one or more anionic polymers, wherein the one or more anionic polymers is selected from the group consisting of poly(D-glutamic acid), a glycosaminoglycan, a glycoprotein, a polysaccharide, poly(mannuronic acid), poly(guluronic acid), heparin, heparin sulfate, chondroitin, chondroitin sulfate, keratan, keratan sulfate, aggrecan, poly(glucosamine), and any combination of two or more of the foregoing;

a silica coating on the core polyplex; and

poly(L-arginine), a vasoactive endothelial growth factor peptide, or both attached to an outer surface of said silica coating; wherein

the cationic polymer and the one or more anionic polymers are not covalently bound to each other.

2. The nanoparticle of claim 1 wherein the anionic polymer is poly(D-glutamic acid).

3. The nanoparticle of claim 1 wherein the cationic polymer is selected from the group consisting of poly(ethylenimine) and poly(L-arginine).

4. The nanoparticle of claim 1 wherein the cationic polypeptide is a histone tail peptide.

5. The nanoparticle of claim 4 wherein the histone tail peptide is human H3 histone tail peptide.

6. The nanoparticle of claim 1 wherein the anionic polymer is poly(D-glutamic acid), the cationic polymer is selected from the group consisting of poly(ethylenimine) and poly(L-arginine), and the cationic polypeptide is a histone tail peptide.

7. The nanoparticle of claim 6 wherein the polynucleotide comprises a nucleotide sequence that encodes a nuclease.

8. The nanoparticle of claim 7 wherein the nuclease is a TALEN.

9. The nanoparticle of claim 8 wherein the TALEN is capable of inducing a break at a site-specific locus of DNA, wherein the break results in a change of expression of a protein encoded by a gene.

10. The nanoparticle of claim 9 wherein the change is a decrease and the gene encodes a sclerostin protein.

11. A nanoparticle comprising:

a core polyplex comprising a cationic polymer, a cationic polypeptide, a polynucleotide, and one or more anionic polymers, wherein the one or more anionic polymers is selected from the group consisting of poly(D-glutamic acid), a glycosaminoglycan, a glycoprotein, a polysaccharide, poly(mannuronic acid), poly(guluronic acid), heparin, heparin sulfate, chondroitin, chondroitin sulfate, keratan, keratan sulfate, aggrecan, poly(glucosamine), and any combination of two or more of the foregoing; and

a silica coating on the core polyplex; wherein

the cationic polymer and the one or more anionic polymers are not covalently bound to each other.

12. The nanoparticle of claim 11 wherein the anionic polymer is poly(D-glutamic acid).

13. The nanoparticle of claim 11 wherein the cationic polymer is selected from the group consisting of poly(ethylenimine) and poly(L-arginine).

14. The nanoparticle of claim 11 wherein the cationic polypeptide is a histone tail peptide.

15. The nanoparticle of claim 14 wherein the histone tail peptide is human H3 histone tail peptide.

16. The nanoparticle of claim 11 wherein the anionic polymer is poly(D-glutamic acid), the cationic polymer is selected from the group consisting of poly(ethylenimine) and poly(L-arginine), and the cationic polypeptide is a histone tail peptide.

17. The nanoparticle of claim 16 wherein the polynucleotide comprises a nucleotide sequence that encodes a nuclease.

18. The nanoparticle of claim 17 wherein the nuclease is a TALEN.

19. The nanoparticle of claim 18 wherein the TALEN is capable of inducing a break at a site-specific locus of DNA, wherein the break results in a change of expression of a protein encoded by a gene.

20. The nanoparticle of claim 19 wherein the change is a decrease and the gene encodes a sclerostin protein.

21. A nanoparticle of claim 16 , further comprising a polymer attached to an outer surface of said silica coating.

22. A nanoparticle of claim 21 , wherein said polymer attached to an outer surface of said silica coating comprises one or more of poly(L-arginine) or a vasoactive endothelial growth factor peptide.

23. A nanoparticle comprising:

a core polyplex comprising poly(D-glutamic acid), a cationic polymer comprising poly(ethylenimine) or poly(L-arginine), or both, a polynucleotide, and a histone tail peptide,

a silica coating on the core polyplex, and

poly(L-arginine), a vasoactive endothelial growth factor peptide, or both attached to an outer surface of said silica coating; wherein

the poly(D-glutamic acid) and the cationic polymer are not covalently bound to each other.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 22, 2017
From: KOTHA, SHIVA PRASAD; WATSON, ANDRE RONALD; PANDIT, VAIBHAV A.
To: RENSSELAER POLYTECHNIC INSTITUTE
Reel/Frame 041674/0917 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 9, 2017
From: KOTHA, SHIVA PRASAD; WATSON, ANDRE RONALD; PANDIT, VAIBHAV A.
To: RENSSELAER POLYTECHNIC INSTITUTE
Reel/Frame 041530/0005 →
Continuity (2)
Provisional Application 61881072 · Sep 23, 2013
Related Publication 20160230189A1 · Aug 11, 2016