Novel CRISPR-Associated Gene-Editing Systems Discovered in Metagenomic Samples Enable Efficient and Specific Genome Engineering

基因组编辑 生物 清脆的 转录激活物样效应核酸酶 诱导多能干细胞 T细胞受体 计算生物学 基因敲除 T细胞 基因 免疫系统 胚胎干细胞 遗传学
作者
Rebecca C. Lamothe,Meghan D. Storlie,Diego A. Espinosa,Rachel Rudlaff,Patrick Browne,Jason Liu,Andres Rivas,Audra Devoto,Jennifer Oki,Ashcon Khoubyari,Daniela S. Aliaga Goltsman,Jyun-Liang Lin,Cristina N. Butterfield,Christopher T. Brown,Brian C. Thomas,Gregory J. Cost
出处
期刊:The CRISPR journal [Mary Ann Liebert, Inc.]
标识
DOI:10.1089/crispr.2022.0089
摘要

Development of medicines using gene editing has been hampered by enzymological and immunological impediments. We described previously the discovery and characterization of improved, novel gene-editing systems from metagenomic data. In this study, we substantially advance this work with three such gene-editing systems, demonstrating their utility for cell therapy development. All three systems are capable of reproducible, high-frequency gene editing in primary immune cells. In human T cells, disruption of the T cell receptor (TCR) alpha-chain was induced in >95% of cells, both paralogs of the TCR beta-chain in >90% of cells, and >90% knockout of β2-microglobulin, TIGIT, FAS, and PDCD1. Simultaneous double knockout of TRAC and TRBC was obtained at a frequency equal to that of the single edits. Gene editing with our systems had minimal effect on T cell viability. Furthermore, we integrate a chimeric antigen receptor (CAR) construct into TRAC (up to ∼60% of T cells), and demonstrate CAR expression and cytotoxicity. We next applied our novel gene-editing tools to natural killer (NK) cells, B cells, hematopoietic stem cells, and induced pluripotent stem cells, generating similarly efficient cell-engineering outcomes including the creation of active CAR-NK cells. Interrogation of our gene-editing systems' specificity reveals a profile comparable with or better than Cas9. Finally, our nucleases lack preexisting humoral and T cell-based immunity, consistent with their sourcing from nonhuman pathogens. In all, we show these new gene-editing systems have the activity, specificity, and translatability necessary for use in cell therapy development.
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