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RBBP4-ZNF827 相互作用的结构和功能特征及其在 NuRD 招募到端粒的作用。

Structural and functional characterization of the RBBP4-ZNF827 interaction and its role in NuRD recruitment to telomeres.

机构信息

Telomere Length Regulation Unit, Children's Medical Research Institute, Sydney Medical School, Faculty of Medicine, University of Sydney, Westmead, NSW 2145, Australia.

Hefei National Laboratory for Physical Sciences at Microscale and School of Life Sciences, University of Science and Technology of China, Hefei, Anhui 230027, China.

出版信息

Biochem J. 2018 Aug 31;475(16):2667-2679. doi: 10.1042/BCJ20180310.

Abstract

The nucleosome remodeling and histone deacetylase (NuRD) complex is an essential multi-subunit protein complex that regulates higher-order chromatin structure. Cancers that use the alternative lengthening of telomere (ALT) pathway of telomere maintenance recruit NuRD to their telomeres. This interaction is mediated by the N-terminal domain of the zinc-finger protein ZNF827. NuRD-ZNF827 plays a vital role in the ALT pathway by creating a molecular platform for recombination-mediated repair. Disruption of NuRD binding results in loss of ALT cell viability. Here, we present the crystal structure of the NuRD subunit RBBP4 bound to the N-terminal 14 amino acids of ZNF827. RBBP4 forms a negatively charged channel that binds to ZNF827 through a network of electrostatic interactions. We identify the precise amino acids in RBBP4 required for this interaction and demonstrate that disruption of these residues prevents RBBP4 binding to both ZNF827 and telomeres, but is insufficient to decrease ALT activity. These data provide insights into the structural and functional determinants of NuRD activity at ALT telomeres.

摘要

核小体重塑和组蛋白去乙酰化酶(NuRD)复合物是一种必需的多亚基蛋白复合物,可调节高级染色质结构。使用端粒替代延长(ALT)途径维持端粒的癌症会招募 NuRD 到它们的端粒。这种相互作用是由锌指蛋白 ZNF827 的 N 端结构域介导的。NuRD-ZNF827 通过为重组介导的修复创建分子平台,在 ALT 途径中发挥至关重要的作用。NuRD 结合的破坏导致 ALT 细胞活力丧失。在这里,我们展示了与 ZNF827 的 N 端 14 个氨基酸结合的 NuRD 亚基 RBBP4 的晶体结构。RBBP4 形成一个带负电荷的通道,通过静电相互作用网络与 ZNF827 结合。我们确定了 RBBP4 中与这种相互作用相关的精确氨基酸,并证明破坏这些残基会阻止 RBBP4 与 ZNF827 和端粒的结合,但不足以降低 ALT 活性。这些数据提供了对 NuRD 在 ALT 端粒上活性的结构和功能决定因素的深入了解。

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