Extracellular nanovesicles for packaging of CRISPR-Cas9 protein and sgRNA to induce therapeutic exon skipping
Внеклеточные нанопузырьки для упаковки белка CRISPR-Cas9 и sgRNA с целью индукции терапевтического пропуска экзонов
2020-03-13
SCID: 54.1/58twdjpa
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CRISPR-Cas9 ribonucleoprotein deliveryDuchenne muscular dystrophyNanoMEDICextracellular nanovesiclestherapeutic exon skipping
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Abstract (AI)
Prolonged expression of the CRISPR-Cas9 nuclease and gRNA from viral vectors may cause off-target mutagenesis and immunogenicity. Thus, a transient delivery system is needed for therapeutic genome editing applications. Here, we develop an extracellular nanovesicle-based ribonucleoprotein delivery system named NanoMEDIC by utilizing two distinct homing mechanisms. Chemical induced dimerization recruits Cas9 protein into extracellular nanovesicles, and then a viral RNA packaging signal and two self-cleaving riboswitches tether and release sgRNA into nanovesicles. We demonstrate efficient genome editing in various hard-to-transfect cell types, including human induced pluripotent stem (iPS) cells, neurons, and myoblasts. NanoMEDIC also achieves over 90% exon skipping efficiencies in skeletal muscle cells derived from Duchenne muscular dystrophy (DMD) patient iPS cells. Finally, single intramuscular injection of NanoMEDIC induces permanent genomic exon skipping in a luciferase reporter mouse and in mdx mice, indicating its utility for in vivo genome editing therapy of DMD and beyond.
Key Findings
1
A single intramuscular injection produces permanent genomic exon skipping in reporter mice and mdx mice, supporting potential in vivo DMD therapy.
2
Chemical-induced dimerization recruits Cas9 into nanovesicles, while a viral RNA packaging signal and self-cleaving riboswitches package and release sgRNA.
3
NanoMEDIC enables efficient genome editing in hard-to-transfect human iPS cells, neurons, and myoblasts.
4
NanoMEDIC is an extracellular nanovesicle system that transiently delivers CRISPR-Cas9 ribonucleoproteins using dual protein- and RNA-packaging mechanisms.
5
The system achieves over 90% exon skipping in skeletal muscle cells derived from Duchenne muscular dystrophy patient iPS cells.
Research Object
NanoMEDIC extracellular nanovesicles delivering CRISPR-Cas9 ribonucleoproteins for therapeutic exon skipping
Research Subject
Transient genome editing and exon-skipping efficiency, including in vivo therapeutic effects in Duchenne muscular dystrophy models
Publication Details
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2020-03-13
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