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bioRxiv · 10.1101/2021.12.01.470847

CRISPR gene-drive systems based on Cas9 nickases promote super-Mendelian inheritance in Drosophila

Abstract

CRISPR-based gene-drive systems have been proposed for managing insect populations, including disease-transmitting mosquitoes, due to their ability to bias their inheritance towards super-Mendelian rates (>50%). Current technologies employ a Cas9 that introduces DNA double-strand breaks into the opposing wildtype allele to replace it with a copy of the gene drive allele via DNA homology-directed repair. Yet, the use of different Cas9s versions is unexplored, and alternative approaches could increase the available toolkit for gene-drive designs. Here, we report a novel gene-drive approach that relies on Cas9 nickases that generate staggered paired nicks in DNA to propagate the engineered gene-drive cassette. We show that generating 5 overhangs in the system yields efficient allelic conversion. The nickase gene-drive arrangement produces large, stereotyped deletions that are advantageous for targeting essential genes. Indeed, our nickase approach should expand the repertoire for gene-drive designs aimed at applications in mosquitoes and beyond.

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BibTeXRIS

Lopez del Amo, V., Sanz Juste, S., Gantz, V. M.. 2021-12-02. CRISPR gene-drive systems based on Cas9 nickases promote super-Mendelian inheritance in Drosophila. https://doi.org/10.1101/2021.12.01.470847

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