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枯草芽孢杆菌芽孢形成时类动粒蛋白RacA与DNA结合及锚定的分子机制解析

Molecular insights into DNA binding and anchoring by the Bacillus subtilis sporulation kinetochore-like RacA protein.

作者信息

Schumacher Maria A, Lee Jeehyun, Zeng Wenjie

机构信息

Department of Biochemistry, Duke University School of Medicine, 255 Nanaline H. Duke, Durham, NC 27710, USA

Department of Biochemistry, Duke University School of Medicine, 255 Nanaline H. Duke, Durham, NC 27710, USA.

出版信息

Nucleic Acids Res. 2016 Jun 20;44(11):5438-49. doi: 10.1093/nar/gkw248. Epub 2016 Apr 16.

Abstract

During Bacillus subtilis sporulation, segregating sister chromosomes are anchored to cell poles and the chromosome is remodeled into an elongated structure called the axial filament. Data indicate that a developmentally regulated protein called RacA is involved in these functions. To gain insight into how RacA performs these diverse processes we performed a battery of structural and biochemical analyses. These studies show that RacA contains an N-terminal winged-helix-turn-helix module connected by a disordered region to a predicted coiled-coil domain. Structures capture RacA binding the DNA using distinct protein-protein interfaces and employing adjustable DNA docking modes. This unique DNA binding mechanism indicates how RacA can both specifically recognize its GC-rich centromere and also non-specifically bind the DNA. Adjacent RacA molecules within the protein-DNA structure interact leading to DNA compaction, suggesting a mechanism for axial filament formation. We also show that the RacA C-domain coiled coil directly contacts the coiled coil region of the polar protein DivIVA, which anchors RacA and hence the chromosome to the pole. Thus, our combined data reveal unique DNA binding properties by RacA and provide insight into the DNA remodeling and polar anchorage functions of the protein.

摘要

在枯草芽孢杆菌形成芽孢的过程中,分离的姐妹染色体会锚定在细胞两极,并且染色体被重塑为一种称为轴向丝的细长结构。数据表明,一种名为RacA的发育调控蛋白参与了这些功能。为了深入了解RacA如何执行这些不同的过程,我们进行了一系列结构和生化分析。这些研究表明,RacA包含一个N端带翼螺旋-转角-螺旋模块,该模块通过一个无序区域连接到一个预测的卷曲螺旋结构域。结构捕获了RacA利用不同的蛋白质-蛋白质界面并采用可调节的DNA对接模式与DNA结合。这种独特的DNA结合机制表明了RacA如何既能特异性识别其富含GC的着丝粒,又能非特异性结合DNA。蛋白质-DNA结构中相邻的RacA分子相互作用导致DNA压缩,这提示了轴向丝形成的一种机制。我们还表明,RacA的C结构域卷曲螺旋直接接触极性蛋白DivIVA的卷曲螺旋区域,DivIVA将RacA进而将染色体锚定在细胞极。因此,我们的综合数据揭示了RacA独特的DNA结合特性,并为该蛋白的DNA重塑和极性锚定功能提供了深入了解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/390b/4914108/e52d0e093eed/gkw248fig1.jpg

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