[Donor DNA Modification with Cas9 Targeting Sites Improves the Efficiency of MTC34 Knock-in into the CXCR4 Locus].

M V Shepelev, D S Komkov, D S Golubev, S E Borovikova, D V Mazurov, N A Kruglova
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Abstract

To successfully apply the genome editing technology using the CRISPR/Cas9 system in the clinic, it is necessary to achieve a high efficiency of knock-in, which is insertion of a genetic construct into a given locus of the target cell genome. One of the approaches to increase the efficiency of knock-in is to modify donor DNA with the same Cas9 targeting sites (CTS) that are used to induce double-strand breaks (DSBs) in the cell genome (the double-cut donor method). Another approach is based on introducing truncated CTS (tCTS), including a PAM site and 16 proximal nucleotides, into the donor DNA. Presumably, tCTS sites do not induce cleavage of the donor plasmid, but can support its transport into the nucleus by Cas9. However, the exact mechanisms whereby these two donor DNA modifications increase the knock-in level are unknown. In this study, the modifications were tested for effect on the knock-in efficiency of the MTC34 genetic construct encoding the HIV-1 fusion inhibitory peptide MT-C34 into the CXCR4 locus of the CEM/R5 T-cell line. When full-length CTSs were introduced into the donor plasmid DNA, the knock-in level was doubled regardless of the CTS number or position relative to the donor sequence. Modifications with tCTSs did not affect the knock-in levels. In vitro, both CTS and tCTS were efficiently cleaved by Cas9. To understand the mechanism of action of these modifications in detail, it is necessary to evaluate their cleavage both in vitro and in vivo.

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[用Cas9靶向位点修饰供体DNA提高MTC34敲入CXCR4位点的效率]。
为了将CRISPR/Cas9系统的基因组编辑技术成功应用于临床,必须实现高效率的敲入,即将遗传结构插入目标细胞基因组的给定位点。提高敲入效率的方法之一是用相同的Cas9靶向位点(CTS)修饰供体DNA,这些位点用于诱导细胞基因组中的双链断裂(DSBs)(双切供体方法)。另一种方法是将截断的CTS (tCTS),包括一个PAM位点和16个近端核苷酸,引入供体DNA。据推测,tCTS位点不会诱导供体质粒的切割,但可以支持其通过Cas9转运到细胞核中。然而,这两种供体DNA修饰增加敲入水平的确切机制尚不清楚。在这项研究中,我们测试了这些修饰对编码HIV-1融合抑制肽MT-C34的MTC34基因构建体敲入CEM/R5 t细胞系CXCR4位点的效率的影响。当将全长CTS引入供体质粒DNA时,无论CTS数量或相对于供体序列的位置如何,敲入水平都增加了一倍。tCTSs的修改不影响敲入水平。在体外,CTS和tCTS都能被Cas9有效地切割。为了更详细地了解这些修饰的作用机制,有必要在体外和体内对它们的裂解进行评估。
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来源期刊
Molekulyarnaya Biologiya
Molekulyarnaya Biologiya Medicine-Medicine (all)
CiteScore
0.70
自引率
0.00%
发文量
131
期刊最新文献
[Donor DNA Modification with Cas9 Targeting Sites Improves the Efficiency of MTC34 Knock-in into the CXCR4 Locus]. [How to Shift the Equilibrium of DNA Break Repair in Favor of Homologous Recombination]. [Human eRF1 Translation Regulation]. [Metabolic Profile of Gut Microbiota and Levels of Trefoil Factors in Adults with Different Metabolic Phenotypes of Obesity]. [Methods to Increase the Efficiency of Knock-in of a Construct Encoding the HIV-1 Fusion Inhibitor, MT-C34 Peptide, into the CXCR4 Locus in the CEM/R5 T Cell Line].
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