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分 Cas9,不分发——提高 CRISPR 技术的治疗指数。

Split Cas9, Not Hairs - Advancing the Therapeutic Index of CRISPR Technology.

机构信息

Heidelberg University Hospital, Department of Infectious Diseases/Virology, Cluster of Excellence CellNetworks, BioQuant BQ0030, Im Neuenheimer Feld 267, D-69120, Heidelberg, Germany.

BioQuant, University of Heidelberg, BioQuant BQ0030, Im Neuenheimer Feld 267, D-69120, Heidelberg, Germany.

出版信息

Biotechnol J. 2018 Sep;13(9):e1700432. doi: 10.1002/biot.201700432. Epub 2018 Feb 2.

DOI:10.1002/biot.201700432
PMID:29316283
Abstract

The discovery that the bacterial CRISPR/Cas9 system can be translated into mammalian cells continues to have an unprecedented impact on the biomedical research community, as it largely facilitates efforts to experimentally interrogate or therapeutically modify the cellular genome. In particular, CRISPR promises the ability to correct disease-associated genetic defects, or to target and destroy invading foreign DNA, in a simple, efficient, and selective manner directly in affected human cells or tissues. Here, we highlight a set of exciting new strategies that aim at further increasing the therapeutic index of CRISPR technologies, by reducing the size of Cas9 expression cassettes and thus enhancing their compatibility with viral gene delivery vectors. Specifically, we discuss the concept of splitCas9 whereby the Cas9 holo-protein is segregated into two parts that are expressed individually and reunited in the cell by various means, including use of 1) the gRNA as a scaffold for Cas9 assembly; 2) the rapamycin-controlled FKBP/FRB system; 3) the light-regulated Magnet system; or 4) inteins. We describe how these avenues, despite pursuing the identical aim, differ in critical features comprising the extent of spatio-temporal control of CRISPR activity, and discuss additional improvements to their efficiency or specificity that should foster their clinical translation.

摘要

细菌的 CRISPR/Cas9 系统可以被转译为哺乳动物细胞这一发现,继续对生物医学研究领域产生前所未有的影响,因为它在很大程度上促进了实验性探究或治疗性修饰细胞基因组的努力。特别是,CRISPR 有望以简单、高效和选择性的方式直接在受影响的人类细胞或组织中纠正与疾病相关的遗传缺陷,或靶向并破坏入侵的外源 DNA。在这里,我们强调了一组令人兴奋的新策略,旨在通过减小 Cas9 表达盒的大小,从而提高其与病毒基因传递载体的兼容性,进一步提高 CRISPR 技术的治疗指数。具体而言,我们讨论了分割 Cas9 的概念,即将 Cas9 全蛋白分成两部分,通过各种方式单独表达,并在细胞中重新组合,包括使用 1)gRNA 作为 Cas9 组装的支架;2)雷帕霉素控制的 FKBP/FRB 系统;3)光调控的 Magnet 系统;或 4)内含肽。我们描述了尽管这些途径追求相同的目标,但在 CRISPR 活性时空控制的程度等关键特征上存在差异,并讨论了提高其效率或特异性的额外改进措施,这些措施应该有助于它们的临床转化。

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