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Efficient generation of mouse models of human diseases via ABE- and BE-mediated base editing

Nature Communications · 2018 · Vol. 9(1) · pp. 2338–2338
Zhen LiuZongyang LuGuang YangShisheng HuangGuanglei LiSongjie FengYajing LiuJianan LiWenxia YuYu ZhangJia ChenQiang SunXingxu Huang

Abstract

A recently developed adenine base editor (ABE) efficiently converts A to G and is potentially useful for clinical applications. However, its precision and efficiency in vivo remains to be addressed. Here we achieve A-to-G conversion in vivo at frequencies up to 100% by microinjection of ABE mRNA together with sgRNAs. We then generate mouse models harboring clinically relevant mutations at Ar and Hoxd13, which recapitulates respective clinical defects. Furthermore, we achieve both C-to-T and A-to-G base editing by using a combination of ABE and SaBE3, thus creating mouse model harboring multiple mutations. We also demonstrate the specificity of ABE by deep sequencing and whole-genome sequencing (WGS). Taken together, ABE is highly efficient and precise in vivo, making it feasible to model and potentially cure relevant genetic diseases.

CRISPR and Genetic EngineeringVirus-based gene therapy researchRNA and protein synthesis mechanismsComputational biologyIn vivoGenome editingBiologyBase (topology)GeneticsBase pairMutationGenomeGene

MeSH terms

Protein DomainsRNA, Guide, CRISPR-Cas SystemsAdenineAnimalsAnimals, NewbornDisease Models, AnimalFemaleGenotypeHumansMaleMutationReceptors, AndrogenRNA, MessengerSensitivity and SpecificityTranscription Factors

Funding

  • ShanghaiTech University
Citations
2,097
FWCI
189.69
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