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Low-Shear Modeled Microgravity Alters the Salmonella enterica Serovar Typhimurium Stress Response in an RpoS-Independent Manner

机译:低剪切模型微重力以独立于RpoS的方式改变了沙门氏菌血清型鼠伤寒沙门氏菌的应激反应。

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摘要

We have previously demonstrated that low-shear modeled microgravity (low-shear MMG) serves to enhance the virulence of a bacterial pathogen, Salmonella enterica serovar Typhimurium. The Salmonella response to low-shear MMG involves a signaling pathway that we have termed the low-shear MMG stimulon, though the identities of the low-shear MMG stimulon genes and regulatory factors are not known. RpoS is the primary sigma factor required for the expression of genes that are induced upon exposure to different environmental-stress signals and is essential for virulence in mice. Since low-shear MMG induces a Salmonella acid stress response and enhances Salmonella virulence, we reasoned that RpoS would be a likely regulator of the Salmonella low-shear MMG response. Our results demonstrate that low-shear MMG provides cross-resistance to several environmental stresses in both wild-type and isogenic rpoS mutant strains. Growth under low-shear MMG decreased the generation time of both strains in minimal medium and increased the ability of both strains to survive in J774 macrophages. Using DNA microarray analysis, we found no evidence of induction of the RpoS regulon by low-shear MMG but did find that other genes were altered in expression under these conditions in both the wild-type and rpoS mutant strains. Our results indicate that, under the conditions of these studies, RpoS is not required for transmission of the signal that induces the low-shear MMG stimulon. Moreover, our studies also indicate that low-shear MMG can be added to a short list of growth conditions that can serve to preadapt an rpoS mutant for resistance to multiple environmental stresses.
机译:我们以前已经证明了低剪切建模微重力(低剪切MMG)可增强细菌病原体沙门氏菌血清型鼠伤寒沙门氏菌的毒力。沙门氏菌对低剪切MMG刺激的反应涉及一个信号途径,我们将其称为低剪切MMG刺激物,尽管低剪切MMG刺激基因的身份和调控因子尚不清楚。 RpoS是表达基因的必需的主要sigma因子,该基因在暴露于不同的环境压力信号后被诱导,并且对于小鼠的毒性至关重要。由于低剪切MMG会引起沙门氏菌酸应激反应并增强沙门氏菌的毒性,因此我们认为RpoS可能是沙门氏菌低剪切MMG反应的调节剂。我们的结果表明,低剪切力MMG对野生型和同基因rpoS突变菌株中的几种环境胁迫均具有交叉抗性。低剪切MMG下的生长减少了两种菌株在基本培养基中的生成时间,并增加了两种菌株在J774巨噬细胞中存活的能力。使用DNA芯片分析,我们没有发现低剪切力MMG诱导RpoS调节子的证据,但确实发现在这些条件下野生型和rpoS突变菌株中其他基因的表达都发生了改变。我们的结果表明,在这些研究的条件下,不需要RpoS来传输诱导低剪切MMG刺激物的信号。此外,我们的研究还表明,低剪切力MMG可以添加到生长条件的简短列表中,这些条件可以使rpoS突变体对多种环境胁迫具有抗性。

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