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首页> 外文期刊>Frontiers in Microbiology >The MqsRA Toxin-Antitoxin System from Xylella fastidiosa Plays a Key Role in Bacterial Fitness, Pathogenicity, and Persister Cell Formation
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The MqsRA Toxin-Antitoxin System from Xylella fastidiosa Plays a Key Role in Bacterial Fitness, Pathogenicity, and Persister Cell Formation

机译: Xylella fastidiosa 的MqsRA毒素-抗毒素系统在细菌适应性,致病性和贴壁细胞形成中起关键作用

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摘要

Through the formation of persister cells, bacteria exhibit tolerance to multidrug and other environmental stresses without undergoing genetic changes. The toxin-antitoxin (TA) systems are involved in the formation of persister cells because they are able to induce cell dormancy. Among the TA systems, the MqsRA system has been observed to be highly induced in persister cells of Xylella fastidiosa (causal agent of citrus variegated chlorosis—CVC) activated by copper stress, and has been described in Escherichia coli as related to the formation of persister cells and biofilms. Thus, we evaluated the role of this TA system in X. fastidiosa by overexpressing the MqsR toxin, and verified that the toxin positively regulated biofilm formation and negatively cell movement, resulting in reduced pathogenicity in citrus plants. The overexpression of MqsR also increased the formation of persister cells under copper stress. Analysis of the gene and protein expression showed that this system likely has an autoregulation mechanism to express the toxin and antitoxin in the most beneficial ratio for the cell to oppose stress. Our results suggest that this TA system plays a key role in the adaptation and survival of X. fastidiosa and reveal new insights into the physiology of phytopathogen-host interactions.
机译:通过形成持久性细胞,细菌表现出对多种药物和其他环境胁迫的耐受力,而不会发生基因变化。毒素-抗毒素(TA)系统参与持久性细胞的形成,因为它们能够诱导细胞休眠。在TA系统中,已观察到MqsRA系统在铜胁迫激活的耐木质小叶黄体(柑橘杂色萎黄病-CVC的病原体)的持久性细胞中被高度诱导,并已在大肠杆菌中描述为与持久性形成有关。细胞和生物膜。因此,我们通过过表达MqsR毒素来评估该TA系统在X. fastidiosa中的作用,并验证了该毒素正调控生物膜的形成和负向细胞运动,从而降低了柑橘类植物的致病性。 MqsR的过表达也增加了铜胁迫下持久性细胞的形成。对基因和蛋白质表达的分析表明,该系统可能具有自动调节机制,以最有利的比例表达毒素和抗毒素,从而使细胞抵抗压力。我们的结果表明,该TA系统在X.fastidiosa的适应和生存中起着关键作用,并揭示了对植物病原体-宿主相互作用的生理学的新见解。

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