生物
基因组编辑
趋化因子受体CCR5
CXCR4型
造血
祖细胞
干细胞
川地34
遗传学
点突变
转导(生物物理学)
病毒学
细胞生物学
基因
受体
突变
基因组
趋化因子受体
生物化学
趋化因子
作者
Friederike Knipping,Gregory A. Newby,Cindy Eide,Amber McElroy,Sarah C. Nielsen,Kyle D. Smith,Yongxing Fang,Tatjana I. Cornu,Caroline Costa,Alejandra Gutiérrez-Guerrero,Samuel P. Bingea,Colby J. Feser,Benjamin J. Steinbeck,Keli L. Hippen,Bruce R. Blazar,Anton P. McCaffrey,Claudio Mussolino,Els Verhoeyen,Jakub Tolar,David R. Liu
标识
DOI:10.1016/j.ymthe.2021.10.026
摘要
Disruption of CCR5 or CXCR4, the main human immunodeficiency virus type 1 (HIV-1) co-receptors, has been shown to protect primary human CD4+ T cells from HIV-1 infection. Base editing can install targeted point mutations in cellular genomes, and can thus efficiently inactivate genes by introducing stop codons or eliminating start codons without double-stranded DNA break formation. Here, we applied base editors for individual and simultaneous disruption of both co-receptors in primary human CD4+ T cells. Using cytosine base editors we observed premature stop codon introduction in up to 89% of sequenced CCR5 or CXCR4 alleles. Using adenine base editors we eliminated the start codon in CCR5 in up to 95% of primary human CD4+ T cell and up to 88% of CD34+ hematopoietic stem and progenitor cell target alleles. Genome-wide specificity analysis revealed low numbers of off-target mutations that were introduced by base editing, located predominantly in intergenic or intronic regions. We show that our editing strategies prevent transduction with CCR5-tropic and CXCR4-tropic viral vectors in up to 79% and 88% of human CD4+ T cells, respectively. The engineered T cells maintained functionality and overall our results demonstrate the effectiveness of base-editing strategies for efficient and specific ablation of HIV co-receptors in clinically relevant cell types.
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