AAV传递碱基编辑器纠正新生儿PKU小鼠基因点突变的通用策略。

Molecular Therapy. Methods & Clinical Development Pub Date : 2022-01-07 eCollection Date: 2022-03-10 DOI:10.1016/j.omtm.2022.01.001
Lifang Zhou, Jing Su, Jie Long, Rui Tao, Wenling Tang, Fengming Qin, Nan Liu, Yanhong Wang, Yaoge Jiao, Yun Hu, Lurong Jiang, Li Li, Yang Yang, Shaohua Yao
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引用次数: 9

摘要

碱基编辑工具能够有效地将C:G或A:T碱基对转换为T:A或G:C,这对于靶向单基因病变特别强大。然而,由于碱基编辑器的体积较大,在体内对致病突变的校正效率仍然较低。在这里,我们设计了一种双腺相关病毒(AAV)策略用于碱基编辑器的体内递送,其中脱氨酶通过GCN4肽及其单链可变片段(scFv)抗体的相互作用与Cas9连接。我们发现,一个或两个拷贝的GCN4肽足以组装碱基编辑器,并产生稳健的靶向编辑。通过优化针对苯丙酮尿症(PKU)突变的单导rna (sgRNAs),我们能够在体外实现高达27.7%的校正。在体内递送这种双AAV碱基编辑系统可有效纠正新生小鼠的pku相关突变,并随后挽救高苯丙氨酸血症相关综合征。考虑到来自不同生物的Cas9蛋白之间的相似性,我们的传递策略将与其他Cas9衍生碱基编辑器兼容。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A universal strategy for AAV delivery of base editors to correct genetic point mutations in neonatal PKU mice.

A universal strategy for AAV delivery of base editors to correct genetic point mutations in neonatal PKU mice.

A universal strategy for AAV delivery of base editors to correct genetic point mutations in neonatal PKU mice.

A universal strategy for AAV delivery of base editors to correct genetic point mutations in neonatal PKU mice.

Base editing tools enabled efficient conversion of C:G or A:T base pairs to T:A or G:C, which are especially powerful for targeting monogenic lesions. However, in vivo correction of disease-causing mutations is still less efficient because of the large size of base editors. Here, we designed a dual adeno-associated virus (AAV) strategy for in vivo delivery of base editors, in which deaminases were linked to Cas9 through the interaction of GCN4 peptide and its single chain variable fragment (scFv) antibody. We found that one or two copies of GCN4 peptide were enough for the assembly of base editors and produced robust targeted editing. By optimization of single-guide RNAs (sgRNAs) that target phenylketonuria (PKU) mutation, we were able to achieve up to 27.7% correction in vitro. In vivo delivery of this dual AAV base editing system resulted in efficient correction of PKU-related mutation in neonatal mice and subsequent rescue of hyperphenylalaninemia-associated syndromes. Considering the similarity between Cas9 proteins from different organisms, our delivery strategy will be compatible with other Cas9-derived base editors.

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