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The CshA DEAD-box RNA helicase is important for quorum sensing control in Staphylococcus aureus

机译:CshA DEAD-box RNA解旋酶对于金黄色葡萄球菌的群体感应控制非常重要

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摘要

DEAD-box RNA helicases are present in almost all living organisms and participate in various processes of RNA metabolism. Bacterial proteins of this large family were shown to be required for translation initiation, ribosome biogenesis and RNA decay. The latter is primordial for rapid adaptation to changing environmental conditions. In particular, the RhlB RNA helicase from E. coli was shown to assist the bacterial degradosome machinery. Recently, the CshA DEAD-box proteins from Bacillus subtilis and Staphylococcus aureus were shown to interact with proteins that are believed to form the degradosome. S. aureus can cause life-threatening disease, with particular concern focusing on biofilm formation on catheters and prosthetic devices, since in this form the bacteria are almost impossible to eradicate both by the immune system and antibiotic treatment. This persistent state relies on the expression of surface encoded proteins that allow attachment to various surfaces, and contrasts with the dispersal mode of growth that relies on the secretion of proteins such as hemolysins and proteases. The switch between these two states is mainly mediated by the Staphylococcal cell density sensing system encoded by agr. We show that inactivation of the cshA DEAD-box gene results in dysregulation of biofilm formation and hemolysis through modulation of agr mRNA stability. Importantly, inactivation of the agrA gene in the cshA mutant background reverses the defect, indicating that cshA is genetically upstream of agr and that a delicate balance of agr mRNA abundance mediated through stability control by CshA is critical for proper expression of virulence factors.
机译:DEAD-box RNA解旋酶几乎存在于所有活生物体中,并参与RNA代谢的各种过程。已证明该大家族的细菌蛋白是翻译起始,核糖体生物发生和RNA降解所必需的。后者对于快速适应不断变化的环境条件至关重要。特别地,显示出来自大肠杆菌的RhlB RNA解旋酶有助于细菌降解体机制。最近,显示了来自枯草芽孢杆菌和金黄色葡萄球菌的CshA DEAD-box蛋白与认为形成降解体的蛋白相互作用。金黄色葡萄球菌可导致威胁生命的疾病,特别关注导管和修复设备上生物膜的形成,因为以这种形式,细菌几乎不可能通过免疫系统和抗生素治疗而根除。这种持久状态取决于表面编码的蛋白质的表达,该蛋白质允许附着在各种表面上,并且与依赖于诸如溶血素和蛋白酶的蛋白质分泌的生长的分散模式形成对比。这两种状态之间的转换主要由agr编码的葡萄球菌细胞密度传感系统介导。我们显示灭活cshA DEAD框基因会导致生物膜形成失调和通过调节agr mRNA稳定性的溶血作用。重要的是,在cshA突变体背景中agrA基因的失活逆转了该缺陷,表明cshA在基因上位于agr的上游,并且通过CshA的稳定性控制介导的agr mRNA丰度的微妙平衡对于毒力因子的正确表达至关重要。

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