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首页> 外文期刊>Molecular Microbiology >The BosR regulatory protein of Borrelia burgdorferi interfaces with the RpoS regulatory pathway and modulates both the oxidative stress response and pathogenic properties of the Lyme disease spirochete.
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The BosR regulatory protein of Borrelia burgdorferi interfaces with the RpoS regulatory pathway and modulates both the oxidative stress response and pathogenic properties of the Lyme disease spirochete.

机译:伯氏疏螺旋体的BosR调节蛋白与RpoS调节途径连接,并调节氧化应激反应和莱姆病螺旋体的致病特性。

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摘要

Summary Borrelia burgdorferi, the Lyme disease spirochete, adapts as it moves between the arthropod and mammalian hosts that it infects. We hypothesize that BosR serves as a global regulator in B. burgdorferi to modulate the oxidative stress response and adapt to mammalian hosts. To test this hypothesis, a bosR mutant in a low-passage B. burgdorferi isolate was constructed. The resulting bosR::kan(R) strain was altered when grown microaerobically or anaerobically suggesting that BosR is required for optimal replication under both growth conditions. The absence of BosR increased the sensitivity of B. burgdorferi to hydrogen peroxide and reduced the synthesis of Cdr and NapA, proteins important for cellular redox balance and the oxidative stress response, respectively, suggesting an important role for BosR in borrelial oxidative homeostasis. For the bosR mutant, the production of RpoS was abrogated and resulted in the loss of OspC and DbpA, suggesting that BosR interfaces with the Rrp2-RpoN-RpoS regulatory cascade. Consistent with the linkage to RpoS, cells lacking bosR were non-infectious in the mouse model of infection. These results indicate that BosR is required for resistance to oxidative stressors and provides a regulatory response that is necessary for B. burgdorferi pathogenesis.
机译:小结莱姆病螺旋体伯氏疏螺旋体在其感染的节肢动物和哺乳动物宿主之间移动时会适应。我们假设BosR作为B. burgdorferi的全球调节因子来调节氧化应激反应并适应哺乳动物宿主。为了检验该假设,构建了低通道伯氏疏螺旋体分离物中的bosR突变体。当微需氧或厌氧生长时,所得的bosR :: kan(R)菌株发生了变化,这表明BosR是在两种生长条件下最佳复制所必需的。 BosR的缺失增加了B. burgdorferi对过氧化氢的敏感性,并降低了Cdr和NapA的合成,Cdr和NapA分别是对细胞氧化还原平衡和氧化应激反应重要的蛋白质,表明BosR在硼酸氧化稳态中的重要作用。对于bosR突变体,RpoS的产生被取消,并导致OspC和DbpA的丧失,这表明BosR与Rrp2-RpoN-RpoS调节级联反应。与RpoS的连接一致,缺乏bosR的细胞在感染的小鼠模型中是非感染性的。这些结果表明,BosR是抗氧化应激所需的,并提供了B. burgdorferi发病机理所必需的调节反应。

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