生物
点突变
胞嘧啶
HEK 293细胞
胞嘧啶脱氨酶
胞苷
遗传学
基因座(遗传学)
清脆的
基因
Cas9
分子生物学
计算生物学
突变
生物化学
遗传增强
酶
作者
Jingke Xie,Xiaoping Huang,Xia Wang,Shixue Gou,Yanhui Liang,Fangbing Chen,Nan Li,Zhen Ouyang,Quanjun Zhang,Weikai Ge,Jin Qiu,Hui Shi,Zanyong Zhuang,Xiaozhu Zhao,Meng Lian,Jiaowei Wang,Yinghua Ye,Longquan Quan,Han Wu,Kepin Wang,Liangxue Lai
出处
期刊:BMC Biology
[Springer Nature]
日期:2020-09-23
卷期号:18 (1)
被引量:42
标识
DOI:10.1186/s12915-020-00866-5
摘要
Abstract Background Many favorable traits of crops and livestock and human genetic diseases arise from multiple single nucleotide polymorphisms or multiple point mutations with heterogeneous base substitutions at the same locus. Current cytosine or adenine base editors can only accomplish C-to-T (G-to-A) or A-to-G (T-to-C) substitutions in the windows of target genomic sites of organisms; therefore, there is a need to develop base editors that can simultaneously achieve C-to-T and A-to-G substitutions at the targeting site. Results In this study, a novel fusion adenine and cytosine base editor (ACBE) was generated by fusing a heterodimer of TadA (ecTadA WT/* ) and an activation-induced cytidine deaminase (AID) to the N- and C-terminals of Cas9 nickase (nCas9), respectively. ACBE could simultaneously induce C-to-T and A-to-G base editing at the same target site, which were verified in HEK293-EGFP reporter cell line and 45 endogenous gene loci of HEK293 cells. Moreover, the ACBE could accomplish simultaneous point mutations of C-to-T and A-to-G in primary somatic cells (mouse embryonic fibroblasts and porcine fetal fibroblasts) in an applicable efficiency. Furthermore, the spacer length of sgRNA and the length of linker could influence the dual base editing activity, which provided a direction to optimize the ACBE system. Conclusion The newly developed ACBE would expand base editor toolkits and should promote the generation of animals and the gene therapy of genetic diseases with heterogeneous point mutations.
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