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当使用 II 型和 V 型 CRISPR 效应物时,观察到线粒体的导入、健康和 mtDNA 拷贝数的变异性。

Mitochondrial import, health and mtDNA copy number variability seen when using type II and type V CRISPR effectors.

机构信息

Cell Biology Laboratories, School of Biochemistry, Faculty of Life Sciences, University of Bristol, Bristol BS8 1TD, UK.

DNA-Protein Interactions Unit, School of Biochemistry, Faculty of Life Sciences, University of Bristol, Bristol BS8 1TD, UK.

出版信息

J Cell Sci. 2020 Sep 16;133(18):jcs248468. doi: 10.1242/jcs.248468.

DOI:10.1242/jcs.248468
PMID:32843580
Abstract

Current methodologies for targeting the mitochondrial genome for research and/or therapy development in mitochondrial diseases are restricted by practical limitations and technical inflexibility. A molecular toolbox for CRISPR-mediated mitochondrial genome editing is desirable, as this could enable targeting of mtDNA haplotypes using the precision and tuneability of CRISPR enzymes. Such 'MitoCRISPR' systems described to date lack reproducibility and independent corroboration. We have explored the requirements for MitoCRISPR in human cells by CRISPR nuclease engineering, including the use of alternative mitochondrial protein targeting sequences and smaller paralogues, and the application of guide (g)RNA modifications for mitochondrial import. We demonstrate varied mitochondrial targeting efficiencies and effects on mitochondrial dynamics/function of different CRISPR nucleases, with bacterium ND2006 (Lb) Cas12a being better targeted and tolerated than Cas9 variants. We also provide evidence of Cas9 gRNA association with mitochondria in HeLa cells and isolated yeast mitochondria, even in the absence of a targeting RNA aptamer. Our data link mitochondrial-targeted LbCas12a/crRNA with increased mtDNA copy number dependent upon DNA binding and cleavage activity. We discuss reproducibility issues and the future steps necessary for MitoCRISPR.

摘要

目前,针对线粒体疾病的研究和/或治疗开发,靶向线粒体基因组的方法受到实际限制和技术灵活性的限制。CRISPR 介导的线粒体基因组编辑的分子工具包是理想的,因为这可以利用 CRISPR 酶的精度和可调节性来靶向 mtDNA 单倍型。迄今为止,所描述的这种“MitoCRISPR”系统缺乏可重复性和独立的证实。我们通过 CRISPR 核酸酶工程探索了 MitoCRISPR 在人类细胞中的要求,包括使用替代的线粒体蛋白靶向序列和较小的同源物,以及引导(g)RNA 修饰用于线粒体导入。我们证明了不同的 CRISPR 核酸酶具有不同的线粒体靶向效率和对线粒体动力学/功能的影响,与 Cas9 变体相比,细菌 ND2006(Lb)Cas12a 更好地靶向和耐受。我们还提供了 Cas9 gRNA 与 HeLa 细胞和分离的酵母线粒体中存在关联的证据,即使在没有靶向 RNA 适体的情况下也是如此。我们的数据将线粒体靶向的 LbCas12a/crRNA 与依赖于 DNA 结合和切割活性的 mtDNA 拷贝数增加联系起来。我们讨论了重现性问题以及 MitoCRISPR 所需的未来步骤。

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