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寻找枯草芽孢杆菌芽孢衣内的蛋白质-蛋白质相互作用。

Searching for protein-protein interactions within the Bacillus subtilis spore coat.

作者信息

Krajcíková Daniela, Lukácová Magda, Müllerová Denisa, Cutting Simon M, Barák Imrich

机构信息

Institute of Molecular Biology, Slovak Academy of Sciences, Dubravska cesta 21, Bratislava 845 51, Slovakia.

出版信息

J Bacteriol. 2009 May;191(10):3212-9. doi: 10.1128/JB.01807-08. Epub 2009 Mar 20.

Abstract

The capability of endospores of Bacillus subtilis to withstand extreme environmental conditions is secured by several attributes. One of them, the protein shell that encases the spore and is known as the coat, provides the spore with its characteristic resistance to toxic chemicals, lytic enzymes, and predation by unicellular and multicellular eukaryotes. Despite most of the components of the spore coat having been identified, we have only a vague understanding of how such a complex structure is assembled. Using the yeast two-hybrid system, we attempted to identify direct contacts among the proteins allocated to the insoluble fraction of the spore coat: CotV, CotW, CotX, CotY, and CotZ. We also examined whether they could interact with CotE, one of the most crucial morphogenetic proteins governing outer coat formation and also present in the insoluble fraction. Out of all 21 possible interactions we tested, 4 were found to be positive. Among these interactions, we confirmed the previous observation that CotE forms homo-oligomers. In addition, we observed homotypic interactions of CotY, strong interactions between CotZ and CotY, and relatively weak, yet significant, interactions between CotV and CotW. The results of this yeast two-hybrid analysis were confirmed by size exclusion chromatography of recombinant coat proteins and a pull-down assay.

摘要

枯草芽孢杆菌的内生孢子耐受极端环境条件的能力由多种特性所保障。其中之一,包裹孢子的蛋白质外壳即芽孢衣,赋予孢子对有毒化学物质、裂解酶以及单细胞和多细胞真核生物捕食的特征抗性。尽管芽孢衣的大多数成分已被鉴定,但我们对如此复杂的结构是如何组装的仍只有模糊的认识。利用酵母双杂交系统,我们试图确定分配到芽孢衣不溶性部分的蛋白质(CotV、CotW、CotX、CotY和CotZ)之间的直接相互作用。我们还研究了它们是否能与CotE相互作用,CotE是控制外芽孢衣形成的最关键形态发生蛋白之一且也存在于不溶性部分。在我们测试的所有21种可能的相互作用中,发现4种呈阳性。在这些相互作用中,我们证实了之前关于CotE形成同型寡聚体的观察结果。此外,我们观察到CotY的同型相互作用、CotZ和CotY之间的强相互作用以及CotV和CotW之间相对较弱但显著的相互作用。通过重组芽孢衣蛋白的尺寸排阻色谱法和下拉试验证实了这种酵母双杂交分析的结果。

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