首页> 美国卫生研究院文献>Journal of Bacteriology >New Insights into the WalK/WalR (YycG/YycF) Essential Signal Transduction Pathway Reveal a Major Role in Controlling Cell Wall Metabolism and Biofilm Formation in Staphylococcus aureus
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New Insights into the WalK/WalR (YycG/YycF) Essential Signal Transduction Pathway Reveal a Major Role in Controlling Cell Wall Metabolism and Biofilm Formation in Staphylococcus aureus

机译:WalK / WalR(YycG / YycF)基本信号传导途径的新见解揭示了金黄色葡萄球菌在控制细胞壁代谢和生物膜形成中的重要作用

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摘要

The highly conserved WalK/WalR (also known as YycG/YycF) two-component system is specific to low-G+C gram-positive bacteria. While this system is essential for cell viability, both the nature of its regulon and its physiological role have remained mostly uncharacterized. We observed that, unexpectedly, Staphylococcus aureus cell death induced by WalKR depletion was not followed by lysis. We show that WalKR positively controls autolytic activity, in particular that of the two major S. aureus autolysins, AtlA and LytM. By using our previously characterized consensus WalR binding site and carefully reexamining the genome annotations, we identified nine genes potentially belonging to the WalKR regulon that appeared to be involved in S. aureus cell wall degradation. Expression of all of these genes was positively controlled by WalKR levels in the cell, leading to high resistance to Triton X-100-induced lysis when the cells were starved for WalKR. Cells lacking WalKR were also more resistant to lysostaphin-induced lysis, suggesting modifications in cell wall structure. Indeed, lowered levels of WalKR led to a significant decrease in peptidoglycan biosynthesis and turnover and to cell wall modifications, which included increased peptidoglycan cross-linking and glycan chain length. We also demonstrated a direct relationship between WalKR levels and the ability to form biofilms. This is the first example in S. aureus of a regulatory system positively controlling autolysin synthesis and biofilm formation. Taken together, our results now define this signal transduction pathway as a master regulatory system for cell wall metabolism, which we have accordingly renamed WalK/WalR to reflect its true function.
机译:高度保守的WalK / WalR(也称为YycG / YycF)两组分系统特定于低G + C革兰氏阳性细菌。尽管该系统对于细胞生存力至关重要,但其调节子的性质及其生理作用均未得到充分表征。我们观察到,出乎意料的是,WalKR耗竭诱导的金黄色葡萄球菌细胞死亡并未随后发生裂解。我们显示,WalKR积极控制自溶活性,特别是两个主要的金黄色葡萄球菌自溶素AtlA和LytM。通过使用我们先前表征的共有WalR结合位点,并仔细地重新检查基因组注释,我们鉴定了可能属于WalKR regulon的9个基因,似乎与金黄色葡萄球菌细胞壁降解有关。所有这些基因的表达都受到细胞中WalKR水平的正向控制,导致当饥饿的WalKR细胞对Triton X-100诱导的裂解具有高抗性。缺乏WalKR的细胞对溶葡萄球菌素诱导的裂解也更具抵抗力,表明细胞壁结构发生了改变。确实,降低的WalKR水平导致肽聚糖生物合成和周转率显着降低,并导致细胞壁修饰,其中包括肽聚糖交联和聚糖链长度增加。我们还证明了WalKR水平与生物膜形成能力之间存在直接关系。这是积极控制自溶素合成和生物膜形成的调节系统在金黄色葡萄球菌中的第一个例子。综上所述,我们的结果现在将该信号转导途径定义为细胞壁代谢的主要调控系统,因此我们将其重命名为WalK / WalR以反映其真实功能。

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