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柄杆菌属的PopZ蛋白在组织细菌细胞极方面形成了一个内在无序的中心。

Caulobacter PopZ forms an intrinsically disordered hub in organizing bacterial cell poles.

作者信息

Holmes Joshua A, Follett Shelby E, Wang Haibi, Meadows Christopher P, Varga Krisztina, Bowman Grant R

机构信息

Department of Molecular Biology, University of Wyoming, Laramie, WY 82071.

Department of Chemistry, University of Wyoming, Laramie, WY 82071.

出版信息

Proc Natl Acad Sci U S A. 2016 Nov 1;113(44):12490-12495. doi: 10.1073/pnas.1602380113. Epub 2016 Oct 18.

Abstract

Despite their relative simplicity, bacteria have complex anatomy at the subcellular level. At the cell poles of Caulobacter crescentus, a 177-amino acid (aa) protein called PopZ self-assembles into 3D polymeric superstructures. Remarkably, we find that this assemblage interacts directly with at least eight different proteins, which are involved in cell cycle regulation and chromosome segregation. The binding determinants within PopZ include 24 aa at the N terminus, a 32-aa region near the C-terminal homo-oligomeric assembly domain, and portions of an intervening linker region. Together, the N-terminal 133 aa of PopZ are sufficient for interacting with all binding partners, even in the absence of homo-oligomeric assembly. Structural analysis of this region revealed that it is intrinsically disordered, similar to p53 and other hub proteins that organize complex signaling networks in eukaryotic cells. Through live-cell photobleaching, we find rapid binding kinetics between PopZ and its partners, suggesting many pole-localized proteins become concentrated at cell poles through rapid cycles of binding and unbinding within the PopZ scaffold. We conclude that some bacteria, similar to their eukaryotic counterparts, use intrinsically disordered hub proteins for network assembly and subcellular organization.

摘要

尽管细菌相对简单,但在亚细胞水平上具有复杂的解剖结构。在新月柄杆菌的细胞极,一种名为PopZ的177个氨基酸(aa)的蛋白质自组装成三维聚合物超结构。值得注意的是,我们发现这种组装体直接与至少八种不同的蛋白质相互作用,这些蛋白质参与细胞周期调控和染色体分离。PopZ内的结合决定因素包括N端的24个氨基酸、C端同源寡聚组装结构域附近的一个32个氨基酸的区域以及中间连接区的部分区域。总之,PopZ的N端133个氨基酸足以与所有结合伙伴相互作用,即使在没有同源寡聚组装的情况下也是如此。对该区域的结构分析表明,它本质上是无序的,类似于在真核细胞中组织复杂信号网络的p53和其他枢纽蛋白。通过活细胞光漂白,我们发现PopZ与其伙伴之间具有快速的结合动力学,这表明许多定位于细胞极的蛋白质通过在PopZ支架内快速的结合和解离循环而集中在细胞极。我们得出结论,一些细菌与其真核对应物类似,利用本质上无序的枢纽蛋白进行网络组装和亚细胞组织。

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