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Generally Stressed Out Bacteria: Environmental Stress Response Mechanisms in Gram-Positive Bacteria

机译:通常强调细菌:革兰氏阳性细菌的环境应激反应机制

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摘要

The ability to monitor the environment for toxic chemical and physical disturbances is essential for bacteria that live in dynamic environments. The fundamental sensing mechanisms and physiological responses that allow bacteria to thrive are conserved even if the molecular components of these pathways are not. The bacterial general stress response (GSR) represents a conceptual model for how one pathway integrates a wide range of environmental signals, and how a generalized system with broad molecular responses is coordinated to promote survival likely through complementary pathways. Environmental stress signals such as heat, osmotic stress, and pH changes are received by sensor proteins that through a signaling cascade activate the sigma factor, SigB, to regulate over 200 genes. Additionally, the GSR plays an important role in stress priming that increases bacterial fitness to unrelated subsequent stressors such as oxidative compounds. While the GSR response is implicated during oxidative stress, the reason for its activation remains unknown and suggests crosstalk between environmental and oxidative stress sensors and responses to coordinate antioxidant functions. Systems levels studies of cellular responses such as transcriptomes, proteomes, and metabolomes of stressed bacteria and single-cell analysis could shed light into the regulated functions that protect, remediate, and minimize damage during dynamic environments. This perspective will focus on fundamental stress sensing mechanisms and responses in Gram-positive bacterial species to illustrate their commonalities at the molecular and physiological levels; summarize exciting directions; and highlight how system-level approaches can help us understand bacterial physiology.
机译:监测有毒化学和物理紊乱环境的能力对于生活在动态环境中的细菌至关重要。即使这些途径的分子组分不是,即使这些途径的分子组分也是如此,允许细菌养殖的基本感测机制和生理反应。细菌一般应力响应(GSR)代表了一种途径如何整合各种环境信号的概念模型,以及如何通过互补途径协调具有广泛分子反应的广义系统。通过信号级联通过信号级联激活Sigma因子SigB来调节200个基因的传感器蛋白,例如热,渗透胁迫和pH变化,例如热,渗透胁迫和pH的变化。另外,GSR在应力灌注中起重要作用,从而将细菌适应性增加到无关的后续压力源,例如氧化剂化合物。虽然GSR反应在氧化应激期间涉及,但其活化的原因仍然是未知的并且表明环境和氧化应激传感器之间的串扰和坐标抗氧化功能的反应。系统水平研究细胞反应,如转录om,蛋白质素,胁迫细菌和单细胞分析的代谢可以脱落到受管制的功能,以保护,修复和最小化动态环境中损坏。这种观点将专注于革兰氏阳性细菌种类的基本压力传感机制和反应,以说明它们的分子和生理水平的常见;总结令人兴奋的方向;并突出系统级方法如何帮助我们理解细菌生理学。

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