首页> 美国卫生研究院文献>Nucleic Acids Research >The human HELLS chromatin remodelling protein promotes end resection to facilitate homologous recombination and contributes to DSB repair within heterochromatin
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The human HELLS chromatin remodelling protein promotes end resection to facilitate homologous recombination and contributes to DSB repair within heterochromatin

机译:人类HELLS染色质重塑蛋白促进末端切除促进同源重组并有助于异染色质内的DSB修复

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摘要

Efficient double-strand break repair in eukaryotes requires manipulation of chromatin structure. ATP-dependent chromatin remodelling enzymes facilitate different DNA repair pathways, during different stages of the cell cycle and in varied chromatin environments. The contribution of remodelling factors to double-strand break repair within heterochromatin during G2 is unclear. The human HELLS protein is a Snf2-like chromatin remodeller family member and is mutated or misregulated in several cancers and some cases of ICF syndrome. HELLS has been implicated in the DNA damage response, but its mechanistic function in repair is not well understood. We discover that HELLS facilitates homologous recombination at two-ended breaks and contributes to repair within heterochromatic regions during G2. HELLS promotes initiation of HR by facilitating end-resection and accumulation of CtIP at IR-induced foci. We identify an interaction between HELLS and CtIP and establish that the ATPase domain of HELLS is required to promote DSB repair. This function of HELLS in maintenance of genome stability is likely to contribute to its role in cancer biology and demonstrates that different chromatin remodelling activities are required for efficient repair in specific genomic contexts.
机译:真核生物中有效的双链断裂修复需要操纵染色质结构。 ATP依赖的染色质重塑酶可在细胞周期的不同阶段以及在各种染色质环境中促进不同的DNA修复途径。在G2期间,重塑因子对异染色质内双链断裂修复的贡献尚不清楚。人类HELLS蛋白是Snf2样的染色质重塑剂家族成员,在几种癌症和某些ICF综合征病例中发生突变或失调。 HELLS已经牵涉到DNA损伤反应中,但其在修复中的机制功能尚不十分清楚。我们发现HELLS促进了两端断裂处的同源重组,并有助于在G2期间在异色区域内进行修复。 HELLS通过促进末端切除和IR诱导灶处CtIP的积累来促进HR的启动。我们确定了HELLS和CtIP之间的相互作用,并确定了HELLS的ATPase域是促进DSB修复所必需的。 HELLS在维持基因组稳定性中的这种功能可能有助于其在癌症生物学中的作用,并证明在特定基因组环境中有效修复需要不同的染色质重塑活性。

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