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BamA 是耐辐射球菌细胞包膜合成和细胞分裂的关键蛋白。

BamA is a pivotal protein in cell envelope synthesis and cell division in Deinococcus radiodurans.

机构信息

College of Life Science, Anhui Agricultural University, 130 Changjiangxilu, Hefei 230036, PR China.

College of Life Science, Anhui Agricultural University, 130 Changjiangxilu, Hefei 230036, PR China.

出版信息

Biochim Biophys Acta Biomembr. 2019 Jul 1;1861(7):1365-1374. doi: 10.1016/j.bbamem.2019.05.010. Epub 2019 May 16.

DOI:10.1016/j.bbamem.2019.05.010
PMID:31103441
Abstract

The beta-barrel assembly machinery (BAM) is an indispensable complex for protein transportation located at the outer membrane of bacteria. BAM is composed of five subunits (BamA-E) in the model bacterium Escherichia coli. DR_0379 is a BamA homolog in Deinococcus radiodurans, but the other subunits have not been detected in this species. In the present study, deletion of bamA resulted in decreased growth rate and altered morphology of D. radiodurans. ΔbamA cells underwent abnormal cell division, leading to aggregated bacteria of diverse size and shape, and the cell envelope was detached from the cell surface, resulting in reduced resistance to high ionic strength. Oxidative stress resistance was significantly enhanced in the mutant, which may be attributed to increased manganese ion concentration and Mn/Fe ratio. Numerous proteins were released into the medium from ΔbamA cells, including surface layer (S-layer) proteins and various transporters located in the periplasm and outer membrane. These results indicate that BamA affects the synthesis and assembly of the outer membrane and S-layer, and thereby influences material transport and cell division. The findings highlight the special functions of BamA in D. radiodurans, and promote our understanding of the multi-layer structure of the D. radiodurans cell envelope.

摘要

β-桶膜装配机器(BAM)是一种位于细菌外膜上的不可或缺的蛋白质运输复合物。BAM 由模式细菌大肠杆菌中的五个亚基(BamA-E)组成。DR_0379 是耐辐射球菌中的 BamA 同源物,但该物种中尚未检测到其他亚基。在本研究中,bamA 的缺失导致耐辐射球菌生长速度减慢和形态改变。ΔbamA 细胞经历异常细胞分裂,导致大小和形状各异的聚集细菌,并且细胞包膜从细胞表面分离,导致对高离子强度的抵抗力降低。突变体的抗氧化应激能力显著增强,这可能归因于锰离子浓度和 Mn/Fe 比的增加。从 ΔbamA 细胞中释放到培养基中的许多蛋白质,包括位于周质和外膜中的表面层(S-层)蛋白和各种转运蛋白。这些结果表明 BamA 影响外膜和 S-层的合成和组装,从而影响物质运输和细胞分裂。这些发现突出了 BamA 在耐辐射球菌中的特殊功能,并促进了我们对耐辐射球菌细胞包膜多层结构的理解。

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