Treatment of autosomal dominant hearing loss by in vivo delivery of genome editing agents

听力损失 等位基因 基因组编辑 生物 遗传学 体内 耳蜗 Cas9 基因 突变体 听觉脑干反应 清脆的 医学 听力学 神经科学
作者
Xue Gao,Yong Tao,Verónica Lamas,Mingqian Huang,Wei-Hsi Yeh,Bifeng Pan,Yujuan Hu,Johnny H. Hu,David B. Thompson,Yilai Shu,Yamin Li,Yin Wang,Shiming Yang,Qiaobing Xu,Daniel B. Polley,M. Charles Liberman,Weijia Kong,Jeffrey R. Holt,Zheng‐Yi Chen,David R. Liu
出处
期刊:Nature [Springer Nature]
卷期号:553 (7687): 217-221 被引量:465
标识
DOI:10.1038/nature25164
摘要

Although genetic factors contribute to almost half of all cases of deafness, treatment options for genetic deafness are limited. We developed a genome-editing approach to target a dominantly inherited form of genetic deafness. Here we show that cationic lipid-mediated in vivo delivery of Cas9-guide RNA complexes can ameliorate hearing loss in a mouse model of human genetic deafness. We designed and validated, both in vitro and in primary fibroblasts, genome editing agents that preferentially disrupt the dominant deafness-associated allele in the Tmc1 (transmembrane channel-like gene family 1) Beethoven (Bth) mouse model, even though the mutant Tmc1Bth allele differs from the wild-type allele at only a single base pair. Injection of Cas9-guide RNA-lipid complexes targeting the Tmc1Bth allele into the cochlea of neonatal Tmc1Bth/+ mice substantially reduced progressive hearing loss. We observed higher hair cell survival rates and lower auditory brainstem response thresholds in injected ears than in uninjected ears or ears injected with control complexes that targeted an unrelated gene. Enhanced acoustic startle responses were observed among injected compared to uninjected Tmc1Bth/+ mice. These findings suggest that protein-RNA complex delivery of target gene-disrupting agents in vivo is a potential strategy for the treatment of some types of autosomal-dominant hearing loss.
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