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根瘤菌目细菌侵染开关的组成部分ExoR、ExoS和ChvI的系统发育共现表明,存在一种关键的适应性机制,可调控根瘤菌目细菌在自由生活阶段和宿主侵染阶段之间的转变。

Phylogenetic Co-Occurrence of ExoR, ExoS, and ChvI, Components of the RSI Bacterial Invasion Switch, Suggests a Key Adaptive Mechanism Regulating the Transition between Free-Living and Host-Invading Phases in Rhizobiales.

作者信息

Heavner Mary Ellen, Qiu Wei-Gang, Cheng Hai-Ping

机构信息

Biochemistry Program, The Graduate Center, City University of New York, New York, New York, United States of America.

Biological Sciences Department, Hunter College, City University of New York, New York, New York, United States of America.

出版信息

PLoS One. 2015 Aug 26;10(8):e0135655. doi: 10.1371/journal.pone.0135655. eCollection 2015.

DOI:10.1371/journal.pone.0135655
PMID:26309130
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4550343/
Abstract

Both bacterial symbionts and pathogens rely on their host-sensing mechanisms to activate the biosynthetic pathways necessary for their invasion into host cells. The Gram-negative bacterium Sinorhizobium meliloti relies on its RSI (ExoR-ExoS-ChvI) Invasion Switch to turn on the production of succinoglycan, an exopolysaccharide required for its host invasion. Recent whole-genome sequencing efforts have uncovered putative components of RSI-like invasion switches in many other symbiotic and pathogenic bacteria. To explore the possibility of the existence of a common invasion switch, we have conducted a phylogenomic survey of orthologous ExoR, ExoS, and ChvI tripartite sets in more than ninety proteobacterial genomes. Our analyses suggest that functional orthologs of the RSI invasion switch co-exist in Rhizobiales, an order characterized by numerous invasive species, but not in the order's close relatives. Phylogenomic analyses and reconstruction of orthologous sets of the three proteins in Alphaproteobacteria confirm Rhizobiales-specific gene synteny and congruent RSI evolutionary histories. Evolutionary analyses further revealed site-specific substitutions correlated specifically to either animal-bacteria or plant-bacteria associations. Lineage restricted conservation of any one specialized gene is in itself an indication of species adaptation. However, the orthologous phylogenetic co-occurrence of all interacting partners within this single signaling pathway strongly suggests that the development of the RSI switch was a key adaptive mechanism. The RSI invasion switch, originally found in S. meliloti, is a characteristic of the Rhizobiales, and potentially a conserved crucial activation step that may be targeted to control host invasion by pathogenic bacterial species.

摘要

细菌共生体和病原体都依赖其宿主感知机制来激活侵入宿主细胞所需的生物合成途径。革兰氏阴性细菌苜蓿中华根瘤菌依赖其RSI(ExoR-ExoS-ChvI)入侵开关来开启琥珀聚糖的产生,琥珀聚糖是其侵入宿主所需的一种胞外多糖。最近的全基因组测序工作在许多其他共生和致病细菌中发现了类似RSI的入侵开关的假定组成部分。为了探究是否存在共同入侵开关的可能性,我们对九十多种变形菌门细菌基因组中的直系同源ExoR、ExoS和ChvI三方组合进行了系统发育基因组学调查。我们的分析表明,RSI入侵开关的功能直系同源物共存于根瘤菌目中,该目以众多入侵物种为特征,但在该目的近缘类群中不存在。对α-变形菌门中这三种蛋白质的直系同源组进行系统发育基因组学分析和重建,证实了根瘤菌目特有的基因共线性和一致的RSI进化历史。进化分析进一步揭示了与动物-细菌或植物-细菌关联特异性相关的位点特异性替换。任何一个特定基因的谱系限制性保守本身就是物种适应性的一种体现。然而,在这单一信号通路中所有相互作用伙伴的直系同源系统发育共现强烈表明,RSI开关的发育是一种关键的适应性机制。最初在苜蓿中华根瘤菌中发现的RSI入侵开关是根瘤菌目的一个特征,并且可能是一个保守的关键激活步骤,有望成为控制致病细菌物种侵入宿主的靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/02e1/4550343/03fd809a402e/pone.0135655.g007.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/02e1/4550343/15e918cd4842/pone.0135655.g002.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/02e1/4550343/03fd809a402e/pone.0135655.g007.jpg

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