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首页> 外文期刊>Scientific reports. >Concurrent live imaging of DNA double-strand break repair and cell-cycle progression by CRISPR/Cas9-mediated knock-in of a tricistronic vector
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Concurrent live imaging of DNA double-strand break repair and cell-cycle progression by CRISPR/Cas9-mediated knock-in of a tricistronic vector

机译:通过CRISPR / CAS9介导的Tricistronic载体的DNA双链突破和细胞周期进展的并发实时成像和细胞周期进展

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Cell-cycle progression can be arrested by ionizing radiation-induced DNA double-strand breaks (DSBs). Although DSBs are patched by DSB repair systems, which comprise proteins such as p53-binding protein 1 (53BP1), the relationship between DSB repair progression and cell-cycle status in living cells is unclear. The probe FUCCI (fluorescent ubiquitination-based cell-cycle indicator) was previously developed for visualizing cell-cycle status. Here, we established novel live-imaging probes based on custom-designed plasmids designated “Focicles” harboring a tricistronic compartment encoding distinct fluorescent proteins ligated to the murine 53BP1 foci-forming region (FFR) and two cell-cycle indicators that are known components of FUCCI (hCdt1 and hGmnn). We used CRISPR/Cas9-mediated genome editing to obtain Focicle?knock-in cell lines in NIH3T3 cells, which were subject to X-ray irradiation that induced comparable numbers of Focicle and endogenous-53BP1 foci. In addition, the Focicle probes enabled the kinetic analysis of both DSB repair and cell-cycle arrest/progression after irradiation, demonstrating that the Focicle?knock-in cells progressed to cell division after DNA damage elimination. These newly developed probes can help to gain a better understanding of the dynamics of DSB repair and cell-cycle control to in turn guide cancer treatment development and cancer-risk assessments.
机译:可以通过电离辐射诱导的DNA双链(DSB)来阻止细胞周期进展。虽然DSB由DSB修复系统修补,但是包含蛋白质如P53结合蛋白1(53bp1),但活细胞中DSB修复进展和细胞周期状态之间的关系尚不清楚。先前开发了探针FUCCI(荧光泛素型电池周期指示器)以可视化细胞周期状态。在这里,我们建立了基于定制设计的质粒的新型活成像探针,所述质粒指定为“围绕着编码与鼠53bp1焦点形成区域(FFR)连接到鼠53bp1焦点形成区域(FFR)的不同荧光蛋白的三级荧光蛋白的特定型盒子和已知部件的细胞循环指示剂FUCCI(HCDT1和HGMNN)。我们使用CRISPR / CAS9介导的基因组编辑来获得球凸α在NIH3T3细胞中的敲击性细胞系,其受X射线照射的影响,所述X射线照射诱导相当的阵差和内源-53bp1焦点。此外,球膜探测能够在照射后的DSB修复和细胞周期滞留/进展的动力学分析,表明该角击中细胞在DNA损伤消除后进入细胞分裂。这些新开发的探针可以帮助更好地了解DSB修复和细胞周期控制的动态,反过来导致癌症治疗发育和癌症风险评估。

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