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
Yoko Fujita, Noriko Sasakawa, Hidetoshi Sakurai, Akitsu Hotta, Jun Komano, Takeshi Noda, Peter Gee, Mandy Siu Yu Lung, Yuya Okuzaki, Takahiro Iguchi, Yukimasa Makita, Hiroyuki Hozumi, Yasutomo Miura, Lucy Yang, Mio Iwasaki, Xiou H. Wang, Matthew A. Waller, Nanako Shirai, Yasuko Abe, Kei Watanabe, Akihiro Kagita, Kumiko A. Iwabuchi, Masahiko Yasuda, Huaigeng Xu, Naoto Inukai
2020-03-13

CRISPR-Cas9 ribonucleoprotein deliveryDuchenne muscular dystrophyNanoMEDICextracellular nanovesiclestherapeutic exon skipping
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.
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.

NanoMEDIC extracellular nanovesicles delivering CRISPR-Cas9 ribonucleoproteins for therapeutic exon skipping

Transient genome editing and exon-skipping efficiency, including in vivo therapeutic effects in Duchenne muscular dystrophy models

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2020-03-13
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Authors
Yoko Fujita
Noriko Sasakawa
Hidetoshi Sakurai
Akitsu Hotta
Jun Komano
Takeshi Noda
Peter Gee
Mandy Siu Yu Lung
Yuya Okuzaki
Takahiro Iguchi
Yukimasa Makita
Hiroyuki Hozumi
Yasutomo Miura
Lucy Yang
Mio Iwasaki
Xiou H. Wang
Matthew A. Waller
Nanako Shirai
Yasuko Abe
Kei Watanabe
Akihiro Kagita
Kumiko A. Iwabuchi
Masahiko Yasuda
Huaigeng Xu
Naoto Inukai
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