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与运动缺陷突变体的比较转录组学导致了鱼腥藻中一种新型多糖分泌系统的鉴定。

Comparative transcriptomics with a motility-deficient mutant leads to identification of a novel polysaccharide secretion system in Nostoc punctiforme.

机构信息

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

出版信息

Mol Microbiol. 2013 Feb;87(4):884-93. doi: 10.1111/mmi.12138. Epub 2013 Jan 15.

Abstract

Many filamentous cyanobacteria are capable of gliding motility by an undefined mechanism. Within the heterocyst-forming clades, some strains, such as the Nostoc spp. and Fisherella spp., are motile only as specialized filaments termed hormogonia. Here we report on the phenotype of inactivation of a methyl-accepting chemotaxis-like protein in Nostoc punctiforme, designated HmpD. The gene hmpD was found to be essential for hormogonium development, motility and polysaccharide secretion. Comparative global transcriptional profiling of the ΔhmpD strain demonstrated that HmpD has a profound effect on the transcriptional programme of hormogonium development, influencing approximately half of the genes differentially transcribed during differentiation. Utilizing this transcriptomic data, we identified a gene locus, designated here as hps, that appears to encode for a novel polysaccharide secretion system. Transcripts for the genes in the hps locus are upregulated in two steps, with the second step dependent on HmpD. Deletion of hpsA, hpsBCD or hpsEFG resulted in the complete loss of motility and polysaccharide secretion, similar to deletion of hmpD. Genes in the hps locus are highly conserved in the filamentous cyanobacteria, but generally absent in unicellular strains, implying a common mechanism of motility unique to the filamentous cyanobacteria.

摘要

许多丝状蓝藻能够通过一种未知的机制进行滑行运动。在异形胞形成的类群中,一些菌株,如念珠藻属和 Fisherella 属,只有作为专门的游动丝称为类游动胞才能运动。在这里,我们报告了 Nostoc punctiforme 中一种甲基受体趋化性样蛋白(命名为 HmpD)失活的表型。发现基因 hmpD 对于类游动胞的发育、运动和多糖分泌是必需的。对ΔhmpD 菌株的比较全基因组转录谱分析表明,HmpD 对类游动胞发育的转录程序有深远的影响,影响大约一半在分化过程中差异转录的基因。利用这些转录组数据,我们鉴定了一个基因座,命名为 hps,它似乎编码一种新的多糖分泌系统。hps 基因座的基因转录物以两步上调,第二步依赖于 HmpD。hpsA、hpsBCD 或 hpsEFG 的缺失导致运动和多糖分泌完全丧失,与 hmpD 的缺失相似。hps 基因座中的基因在丝状蓝藻中高度保守,但在单细胞菌株中通常不存在,这表明运动的共同机制是丝状蓝藻所特有的。

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