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首页> 外文期刊>The FASEB Journal >Protective role of RAD50 on chromatin bridges during abnormal cytokinesis.
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Protective role of RAD50 on chromatin bridges during abnormal cytokinesis.

机译:RAD50在胞质分裂异常过程中对染色质桥的保护作用。

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摘要

Faithful chromosome segregation is required for preserving genomic integrity. Failure of this process may entail chromatin bridges preventing normal cytokinesis. To test whether RAD50, a protein normally involved in DNA double-strand break repair, is involved in abnormal cytokinesis and formation of chromatin bridges, we used immunocytochemical and protein interaction assays. RAD50 localizes to chromatin bridges during aberrant cytokinesis and subsequent stages of the cell cycle, either decorating the entire bridge or focally accumulating at the midbody zone. Ionizing radiation led to an ~4-fold increase in the rate of chromatin bridges in an ataxia telangiectatica mutated (ATM)-dependent manner in human RAD50-proficient fibroblasts but not in RAD50-deficient cells. Cells with a RAD50-positive chromatin bridge were able to continue cell cycling and to progress through S phase (44), whereas RAD50 knockdown caused a deficiency in chromatin bridges as well as an ~4-fold prolonged duration of mitosis. RAD50 colocalized and directly interacted with Aurora B kinase and phospho-histone H3, and Aurora B kinase inhibition led to a deficiency in RAD50-positive bridges. Based on these observations, we propose that RAD50 is a crucial factor for the stabilization and shielding of chromatin bridges. Our study provides evidence for a hitherto unknown role of RAD50 in abnormal cytokinesis.
机译:为了保持基因组的完整性,需要忠实的染色体分离。这个过程的失败可能需要染色质桥阻止正常的胞质分裂。为了测试 RAD50(一种通常参与 DNA 双链断裂修复的蛋白质)是否参与异常胞质分裂和染色质桥的形成,我们使用了免疫细胞化学和蛋白质相互作用测定。RAD50 在异常胞质分裂和细胞周期的后续阶段定位于染色质桥,要么装饰整个桥,要么局灶在体中区。电离辐射导致人类 RAD50 成纤维细胞中以共济失调毛细血管扩张突变 (ATM) 依赖性方式的染色质桥速率增加 ~4 倍,但在 RAD50 缺陷细胞中则不然。具有 RAD50 阳性染色质桥的细胞能够继续细胞循环并通过 S 期 (44%),而 RAD50 敲低导致染色质桥缺陷以及有丝分裂持续时间延长 ~4 倍。RAD50 与 Aurora B 激酶和磷酸化组蛋白 H3 共定位并直接相互作用,Aurora B 激酶抑制导致 RAD50 阳性桥缺乏。基于这些观察结果,我们认为RAD50是稳定和屏蔽染色质桥的关键因素。我们的研究为迄今为止未知的 RAD50 在异常胞质分裂中的作用提供了证据。

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