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Integrated regulation of the type III secretion system and other virulence determinants in Ralstonia solanacearum

机译:青枯雷尔氏菌中III型分泌系统和其他毒力决定因素的综合调控

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摘要

In many plant and animal bacterial pathogens, the Type III secretion system (TTSS) that directly translocates effector proteins into the eukaryotic host cells is essential for the development of disease. In all species studied, the transcription of the TTSS and most of its effector substrates is tightly regulated by a succession of consecutively activated regulators. However, the whole genetic programme driven by these regulatory cascades is still unknown, especially in bacterial plant pathogens. Here, we have characterised the programme triggered by HrpG, a host-responsive regulator of the TTSS activation cascade in the plant pathogen Ralstonia solanacearum. We show through genome-wide expression analysis that, in addition to the TTSS, HrpG controls the expression of a previously undescribed TTSS-independent pathway that includes a number of other virulence determinants and genes likely involved in adaptation to life in the host. Functional studies revealed that this second pathway co-ordinates the bacterial production of plant cell wall-degrading enzymes, exopolysaccharide, and the phytohormones ethylene and auxin. We provide experimental evidence that these activities contribute to pathogenicity. We also show that the ethylene produced by R. solanacearum is able to modulate the expression of host genes and can therefore interfere with the signalling of plant defence responses. These results provide a new, integrated view of plant bacterial pathogenicity, where a common regulator activates synchronously upon infection the TTSS, other virulence determinants and a number of adaptive functions, which act co-operatively to cause disease.
机译:在许多动植物细菌病原体中,将效应蛋白直接转运到真核宿主细胞中的III型分泌系统(TTSS)对于疾病的发展至关重要。在所有研究的物种中,TTSS及其大多数效应物底物的转录均由一系列连续激活的调节剂严格调控。但是,由这些调节级联驱动的整个遗传程序仍然是未知的,尤其是在细菌植物病原体中。在这里,我们已经描述了由HrpG触发的程序的特征,HrpG是植物病原体茄形青枯菌中TTSS激活级联的宿主响应性调节剂。我们通过全基因组表达分析表明,除TTSS外,HrpG还控制着先前未描述的TTSS独立途径的表达,该途径包括许多其他毒力决定簇和可能参与宿主生命适应的基因。功能研究表明,该第二种途径可协调细菌降解植物细胞壁降解酶,胞外多糖以及植物激素乙烯和生长素的过程。我们提供实验证据,这些活动有助于致病性。我们还表明,由茄青枯菌产生的乙烯能够调节宿主基因的表达,因此可以干扰植物防御反应的信号传导。这些结果提供了一种新的,综合的植物细菌致病性观点,其中常见的调节剂在感染时同步激活TTSS,其他毒力决定因素和许多适应性功能,这些功能协同作用导致疾病。

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