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组蛋白折叠复合物 MHF 被 FANCM 重塑以识别分支 DNA 并保护基因组稳定性。

The histone-fold complex MHF is remodeled by FANCM to recognize branched DNA and protect genome stability.

机构信息

Laboratory of Genetics, National Institute on Aging, National Institutes of Health, Baltimore, MD 21224, USA.

Laboratory of Molecular Biology, National Institute of Diabetes and Digestive and Kidney Diseases, National Institute of Health, Bethesda, MD 20892, USA.

出版信息

Cell Res. 2014 May;24(5):560-75. doi: 10.1038/cr.2014.42. Epub 2014 Apr 4.

Abstract

Histone-fold proteins typically assemble in multiprotein complexes to bind duplex DNA. However, one histone-fold complex, MHF, associates with Fanconi anemia (FA) protein FANCM to form a branched DNA remodeling complex that senses and repairs stalled replication forks and activates FA DNA damage response network. How the FANCM-MHF complex recognizes branched DNA is unclear. Here, we solved the crystal structure of MHF and its complex with the MHF-interaction domain (referred to as MID) of FANCM, and performed structure-guided mutagenesis. We found that the MID-MHF complex consists of one histone H3-H4-like MHF heterotetramer wrapped by a single polypeptide of MID. We identified a zinc atom-liganding structure at the central interface between MID and MHF that is critical for stabilization of the complex. Notably, the DNA-binding surface of MHF was altered by MID in both electrostatic charges and allosteric conformation. This leads to a switch in the DNA-binding preference - from duplex DNA by MHF alone, to branched DNA by the MID-MHF complex. Mutations that disrupt either the composite DNA-binding surface or the protein-protein interface of the MID-MHF complex impaired activation of the FA network and genome stability. Our data provide the structural basis of how FANCM and MHF work together to recognize branched DNA, and suggest a novel mechanism by which histone-fold complexes can be remodeled by their partners to bind special DNA structures generated during DNA metabolism.

摘要

组蛋白折叠蛋白通常组装成多蛋白复合物以结合双链 DNA。然而,一种组蛋白折叠复合物 MHF 与范可尼贫血 (FA) 蛋白 FANCM 结合形成分支 DNA 重塑复合物,该复合物可感知和修复停滞的复制叉并激活 FA DNA 损伤反应网络。FANCM-MHF 复合物如何识别分支 DNA 尚不清楚。在这里,我们解决了 MHF 及其与 FANCM 的 MHF 相互作用结构域(称为 MID)复合物的晶体结构,并进行了结构指导的诱变。我们发现 MID-MHF 复合物由一个包裹 MID 单一多肽的单个组蛋白 H3-H4 样 MHF 异四聚体组成。我们确定了在 MID 和 MHF 之间的中心界面上的一个锌原子配体结构,该结构对于稳定复合物至关重要。值得注意的是,MID 在静电电荷和变构构象上改变了 MHF 的 DNA 结合表面。这导致 DNA 结合偏好发生转变——由单独的 MHF 结合双链 DNA,转变为由 MID-MHF 复合物结合分支 DNA。破坏 MID-MHF 复合物的复合 DNA 结合表面或蛋白质-蛋白质界面的突变会损害 FA 网络的激活和基因组稳定性。我们的数据提供了 FANCM 和 MHF 如何协同作用以识别分支 DNA 的结构基础,并提出了一种新的机制,即组蛋白折叠复合物可以通过其伴侣重塑以结合在 DNA 代谢过程中产生的特殊 DNA 结构。

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