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有证据表明,一种经过修饰的类IV型菌毛系统为丝状蓝细菌的滑行运动和多糖分泌提供动力。

Evidence that a modified type IV pilus-like system powers gliding motility and polysaccharide secretion in filamentous cyanobacteria.

作者信息

Khayatan Behzad, Meeks John C, Risser Douglas D

机构信息

Department of Biology, University of the Pacific, Stockton, CA, 95211, USA.

Department of Microbiology, University of California, Davis, CA, 95616, USA.

出版信息

Mol Microbiol. 2015 Dec;98(6):1021-36. doi: 10.1111/mmi.13205. Epub 2015 Oct 20.

Abstract

In filamentous cyanobacteria, the mechanism of gliding motility is undefined but posited to be driven by a polysaccharide secretion system known as the junctional pore complex (JPC). Recent evidence implies that the JPC is a modified type IV pilus-like structure encoded for in part by genes in the hps locus. To test this hypothesis, we conducted genetic, cytological and comparative genomics studies on hps and pil genes in Nostoc punctiforme, a species in which motility is restricted to transiently differentiated filaments called hormogonia. Inactivation of most hps and pil genes abolished motility and abolished or drastically reduced secretion of hormogonium polysaccharide, and the subcellular localization of several Pil proteins in motile hormogonia corresponds to the site of the junctional pore complex. The non-motile ΔhpsE-G strain, which lacks three glycosyltransferases that synthesize hormogonium polysaccharide, could be complemented to motility by the addition of medium conditioned by wild-type hormogonia. Based on this result, we speculate that secretion of hormogonium polysaccharide facilitates but does not provide the motive force for gliding. Both the Hps and Pil homologs characterized in this study are almost universally conserved among filamentous cyanobacteria, with the Hps homologs rarely found in unicellular strains. These results support the theory that Hps and Pil proteins compose the JPC, a type IV pilus-like nanomotor that drives motility and polysaccharide secretion in filamentous cyanobacteria.

摘要

在丝状蓝细菌中,滑行运动的机制尚不清楚,但推测是由一种称为连接孔复合体(JPC)的多糖分泌系统驱动的。最近的证据表明,JPC是一种经过修饰的IV型菌毛样结构,部分由hps基因座中的基因编码。为了验证这一假设,我们对点状念珠藻中的hps和菌毛基因进行了遗传、细胞学和比较基因组学研究,在该物种中,运动性仅限于称为藻殖段的瞬时分化丝状体。大多数hps和菌毛基因的失活消除了运动性,并消除或大幅减少了藻殖段多糖的分泌,并且几种菌毛蛋白在运动性藻殖段中的亚细胞定位与连接孔复合体的位置相对应。缺乏合成藻殖段多糖的三种糖基转移酶的非运动性ΔhpsE-G菌株,可以通过添加野生型藻殖段 conditioned 的培养基来恢复运动性。基于这一结果,我们推测藻殖段多糖的分泌促进但不提供滑行的动力。本研究中鉴定的Hps和菌毛同源物在丝状蓝细菌中几乎普遍保守,而Hps同源物在单细胞菌株中很少见。这些结果支持了Hps和菌毛蛋白组成JPC的理论,JPC是一种IV型菌毛样纳米马达,驱动丝状蓝细菌中的运动性和多糖分泌。

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