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基于 CRISPR/Cas 的人类 T 细胞工程:基础研究与临床应用

英文原题:CRISPR/Cas-based Human T cell Engineering: Basic Research and Clinical Application.

查看英文原题

CRISPR/Cas-based Human T cell Engineering: Basic Research and Clinical Application.

PubMed 2022/03/28(内容时间) Immunol Lett Q3 · IF 3.2(JCR 2025)

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中文摘要

工程化人类T细胞以治疗癌症、病毒感染和自身免疫性疾病一直是许多免疫学家和血液学家的长期梦想。尽管人类原代T细胞的基因工程已经开展了数十年,但这一过程具有挑战性、耗时,且大多局限于由病毒转导介导的转基因插入。缺乏广泛可及的工具来以靶向方式高效且精确地对T细胞进行基因工程改造,限制了其作为“活体药物”的适用性。随着CRISPR/Cas9的发现及其在人类T细胞中的适配应用,这一局面发生了根本性改变。CRISPR/Cas9使T细胞工程化变得广泛可及,并加速了工程化过继性T细胞疗法的发展。在CRISPR/Cas9被发现作为一种生物技术工具仅6年后,首批CRISPR工程化T细胞已在I期临床试验中用于难治性癌症患者。新型Cas蛋白——天然的和工程化的——正在迅速涌现。这些蛋白提供了例如更高的灵活性、活性和/或特异性。

此外,精密的蛋白质工程以及Cas与脱氨酶或逆转录酶的融合,使得无需双链切割即可进行基因组DNA编辑。因此,用于实验研究以及新型治疗方法的“CRISPR工具箱”正在迅速扩展。在本综述中,我们将总结基于CRISPR/Cas的人类T细胞工程化在基础研究及其临床应用中的当前状态。

展开英文摘要原文

Engineering human T cells for the treatment of cancer, viral infections and autoimmunity has been a long-standing dream of many immunologists and hematologists. Although primary human T cells have been genetically engineered for decades, this process was challenging, time consuming and mostly limited to transgene insertions mediated by viral transduction. The absence of widely accessible tools to efficiently and precisely engineer T cells genetically in a targeted manner limited their applicability as a living drug.

This fundamentally changed with the discovery of CRISPR/Cas9 and its adaptation to human T cells. CRISPR/Cas9 has made T cell engineering widely accessible and accelerated the development of engineered adoptive T cell therapies.

Only 6 years after the discovery of CRISPR/Cas9 as a biotechnological tool the first CRISPR engineered T cells have been administered to patients with refractory cancers in a phase I clinical trial. Novel Cas proteins - natural and engineered ones - are rapidly emerging. These offer for instance increased flexibility, activity and/or specificity.

Moreover, sophisticated protein engineering and fusions of Cas with deaminases or reverse transcriptases enable genomic DNA editing without the need for a double strand cut.

Thus, the "CRISPR tool box" for experimental use as well as for novel therapeutic approaches is rapidly expanding. In this review, we will summarize the current state of CRISPR/Cas-based engineering in human T cells for basic research and its clinical applications.

论文信息

作者
Bernard BE、Landmann E、Jeker LT、Schumann K
第一作者单位
Technical University of Munich (TUM), School of Medicine, Institute for Medical Microbiology, Immunology and Hygiene, Munich 81675, Germany; TUM, Institute for Advanced Study, Garching 85748, Germany; These authors contributed equally: Bettina E. Bernard, Emmanuelle Landmann.Germany
通讯作者单位
Technical University of Munich (TUM), School of Medicine, Institute for Medical Microbiology, Immunology and Hygiene, Munich 81675, Germany; TUM, Institute for Advanced Study, Garching 85748, Germany. Electronic address: kathrin.schumann@tum.de.Germany
文献类型
综述 · 非美国政府资助研究
期刊
Immunology letters2022 May
原文标识
PubMed 35358611 · DOI 10.1016/j.imlet.2022.03.005