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基于CRISPR-Cas9的荧光素酶开启系统作为非同源末端连接途径报告基因的开发。

Development of a CRISPR-Cas9 Based Luciferase Turn-On System as Nonhomologous End Joining Pathway Reporter.

作者信息

Wang Yi, Zhao Yanjie, Su Weijun, Guo Xiaojing, Li Shuai

机构信息

Department of Breast Cancer Pathology and Research Laboratory, Tianjin Medical University Cancer Institute and Hospital, National Clinical Research Center for Cancer, Key Laboratory of Cancer Prevention and Therapy, Tianjin, Tianjin's Clinical Research Center for Cancer, Tianjin, 300060, P. R. China.

School of Medicine, Nankai University, Tianjin, 300071, P. R. China.

出版信息

Chembiochem. 2021 Jun 15;22(12):2177-2181. doi: 10.1002/cbic.202100128. Epub 2021 May 7.

Abstract

There is a need of a non-homologous end joining (NHEJ) pathway reporter system that facilitates screening and discovery of NHEJ chemical inhibitors. In this study, we developed a CRISPR-Cas9 based luciferase turn-on system as a NHEJ pathway reporter. By substituting nucleotide 205C with ATC, we introduced a reading-frame shift and a pre-stop codon into the luciferase coding region and thereby generated a bioluminescent signal mute HEK293T reporter cell line. Then, a CRISPR-Cas9 plasmid expressing a guide RNA targeting luciferase coding region was introduced into the reporter cell line to generate NHEJ-associated indel to restore the reading frame and subsequently turn on the bioluminescent signal. We observed over three-thousand fold increase in signal after CRISPR-Cas9 vector transfection. Different known chemical inhibitors of the NHEJ pathway, such as NU7441, KU0060648, and KU55933, could significantly inhibit the bioluminescent signal generated by CRISPR-Cas9 targeting. In addition, we validated our system by high throughput sequencing.

摘要

需要一种非同源末端连接(NHEJ)途径报告系统,以促进NHEJ化学抑制剂的筛选和发现。在本研究中,我们开发了一种基于CRISPR-Cas9的荧光素酶开启系统作为NHEJ途径报告系统。通过将核苷酸205C替换为ATC,我们在荧光素酶编码区域引入了读码框移位和提前终止密码子,从而产生了一种生物发光信号沉默的HEK293T报告细胞系。然后,将表达靶向荧光素酶编码区域的引导RNA的CRISPR-Cas9质粒引入报告细胞系,以产生与NHEJ相关的插入缺失,从而恢复读码框并随后开启生物发光信号。在转染CRISPR-Cas9载体后,我们观察到信号增加了三千多倍。不同的已知NHEJ途径化学抑制剂,如NU7441、KU0060648和KU55933,可显著抑制由CRISPR-Cas9靶向产生的生物发光信号。此外,我们通过高通量测序验证了我们的系统。

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