非病毒内含子敲入基因整合到人类T细胞和T细胞选择

IF 26.8 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Theodore L. Roth, Johnathan Lu, Alison McClellan, Courtney Kernick, Oliver Takacsi-Nagy, Ansuman T. Satpathy
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引用次数: 0

摘要

目前将DNA序列精确整合到人类T细胞基因组的方法主要针对外显子区域,这限制了整合位点的选择,并且需要复杂的细胞选择策略。在这里,我们展示了将合成外显子整合到内源性内含子中的非病毒内含子敲除蛋白,可以在成功编辑的细胞中实现有效的基因靶向和选择性基因敲除。在原代人T细胞中,嵌合抗原受体(CAR)敲入T细胞受体α恒定位点,通过T细胞受体阴性细胞的阴性选择,促进了90%以上CAR+ T细胞的纯化。该方法是可扩展的,适用于内含子位点,正如我们在四种不同的内源性表面受体基因内展示的内含子,并且支持大型合成外显子(长于5kb)的整合,保留内源性基因表达的替代剪接结构,以及允许内源性或用户定义基因调控的合成启动子。非病毒内含子敲入扩展了可靶向基因组位点的范围,并为选择编辑的原代人T细胞提供了一种简化和高通量的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Non-viral intron knock-ins for targeted gene integration into human T cells and for T-cell selection

Non-viral intron knock-ins for targeted gene integration into human T cells and for T-cell selection

Current methods for the precise integration of DNA sequences into the genome of human T cells predominantly target exonic regions, which limits the choice of integration site and requires complex cell-selection strategies. Here we show that non-viral intron knock-ins for incorporating synthetic exons into endogenous introns enable efficient gene targeting and selective gene knockout in successfully edited cells. In primary human T cells, the knock-in of a chimaeric antigen receptor (CAR) into the T-cell receptor alpha constant locus facilitated the purification of more than 90% CAR+ T cells via the negative selection of T-cell-receptor-negative cells. The method is scalable, applicable across intronic sites, as we show for introns within four distinct endogenous surface-receptor genes, and supports the integration of large synthetic exons (longer than 5 kb), of alternative splicing architectures that preserve endogenous gene expression, and of synthetic promoters allowing for endogenous or user-defined gene regulation. Non-viral intron knock-ins expand the range of targetable genomic sites and provide a simplified and high-throughput strategy for selecting edited primary human T cells.

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来源期刊
Nature Biomedical Engineering
Nature Biomedical Engineering Medicine-Medicine (miscellaneous)
CiteScore
45.30
自引率
1.10%
发文量
138
期刊介绍: Nature Biomedical Engineering is an online-only monthly journal that was launched in January 2017. It aims to publish original research, reviews, and commentary focusing on applied biomedicine and health technology. The journal targets a diverse audience, including life scientists who are involved in developing experimental or computational systems and methods to enhance our understanding of human physiology. It also covers biomedical researchers and engineers who are engaged in designing or optimizing therapies, assays, devices, or procedures for diagnosing or treating diseases. Additionally, clinicians, who make use of research outputs to evaluate patient health or administer therapy in various clinical settings and healthcare contexts, are also part of the target audience.
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