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NBS1 与 HP1 相互作用以确保基因组完整性。

NBS1 interacts with HP1 to ensure genome integrity.

机构信息

Dipartimento di Biologia e Biotecnologie "C. Darwin", Sapienza Università di Roma, Rome, Italy.

Fondazione Cenci Bolognetti/Istituto Pasteur Italia, Rome, Italy.

出版信息

Cell Death Dis. 2019 Dec 13;10(12):951. doi: 10.1038/s41419-019-2185-x.

Abstract

Heterochromatin Protein 1 (HP1) and the Mre11-Rad50-Nbs1 (MRN) complex are conserved factors that play crucial role in genome stability and integrity. Despite their involvement in overlapping cellular functions, ranging from chromatin organization, telomere maintenance to DNA replication and repair, a tight functional relationship between HP1 and the MRN complex has never been elucidated. Here we show that the Drosophila HP1a protein binds to the MRN complex through its chromoshadow domain (CSD). In addition, loss of any of the MRN members reduces HP1a levels indicating that the MRN complex acts as regulator of HP1a stability. Moreover, overexpression of HP1a in nbs (but not in rad50 or mre11) mutant cells drastically reduces DNA damage associated with the loss of Nbs suggesting that HP1a and Nbs work in concert to maintain chromosome integrity in flies. We have also found that human HP1α and NBS1 interact with each other and that, similarly to Drosophila, siRNA-mediated inhibition of NBS1 reduces HP1α levels in human cultured cells. Surprisingly, fibroblasts from Nijmegen Breakage Syndrome (NBS) patients, carrying the 657del5 hypomorphic mutation in NBS1 and expressing the p26 and p70 NBS1 fragments, accumulate HP1α indicating that, differently from NBS1 knockout cells, the presence of truncated NBS1 extends HP1α turnover and/or promotes its stability. Remarkably, an siRNA-mediated reduction of HP1α in NBS fibroblasts decreases the hypersensitivity to irradiation, a characteristic of the NBS syndrome. Overall, our data provide an unanticipated evidence of a close interaction between HP1 and NBS1 that is essential for genome stability and point up HP1α as a potential target to counteract chromosome instability in NBS patient cells.

摘要

异染色质蛋白 1(HP1)和 Mre11-Rad50-Nbs1(MRN)复合物是保守的因子,在基因组稳定性和完整性中发挥着至关重要的作用。尽管它们参与了从染色质组织、端粒维持到 DNA 复制和修复等重叠的细胞功能,但 HP1 和 MRN 复合物之间的紧密功能关系从未被阐明。在这里,我们显示果蝇 HP1a 蛋白通过其 chromoshadow 结构域(CSD)与 MRN 复合物结合。此外,任何一个 MRN 成员的缺失都会降低 HP1a 的水平,表明 MRN 复合物是 HP1a 稳定性的调节剂。此外,在 nbs(而不是 rad50 或 mre11)突变细胞中过表达 HP1a 会大大降低与 Nbs 缺失相关的 DNA 损伤,这表明 HP1a 和 Nbs 协同作用以维持果蝇染色体的完整性。我们还发现人类 HP1α 和 NBS1 相互作用,并且类似于果蝇,siRNA 介导的 NBS1 抑制降低了人类培养细胞中的 HP1α 水平。令人惊讶的是,携带 NBS1 657del5 功能缺失突变并表达 p26 和 p70 NBS1 片段的 Nijmegen 断裂综合征(NBS)患者的成纤维细胞积累 HP1α,表明与 NBS1 敲除细胞不同,截短的 NBS1 的存在延长了 HP1α 的周转和/或促进其稳定性。值得注意的是,NBS 成纤维细胞中 HP1α 的 siRNA 介导减少降低了对辐射的敏感性,这是 NBS 综合征的一个特征。总的来说,我们的数据提供了一个意想不到的证据,证明 HP1 和 NBS1 之间存在密切的相互作用,这对基因组稳定性至关重要,并指出 HP1α 是对抗 NBS 患者细胞染色体不稳定性的潜在靶标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5687/6911104/b1da3c78bcf6/41419_2019_2185_Fig1_HTML.jpg

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