细菌趋化感觉转导过程中兴奋和适应的分子基础。

Contributions to microbiology Pub Date : 2009-01-01 Epub Date: 2009-06-02 DOI:10.1159/000219372
Christopher V Rao, George W Ordal
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引用次数: 35

摘要

趋化性是细胞感知环境中的化学梯度,然后向更有利的条件移动的过程。以大肠杆菌为例,趋化性的范例生物,该途径现在可以说是所有生物学中最具特征的。如果把他们的观点扩大到包括其他种类的细菌,那么我们对趋化性的认识就远远不够发达了。特别是,尽管许多核心信号蛋白的保护,在不相关的物种中趋化途径是完全不同的。在这里,我们总结了目前关于大肠杆菌和枯草芽孢杆菌趋化途径的知识状况,特别关注了激发和适应的机制。这一过程的机制差异很大,枯草芽孢杆菌的过程与在海洋热菌和许多古细菌中发现的过程相似,可能代表了细菌趋化的新范式。例如,枯草芽孢杆菌有三种相互作用的方法在刺激后恢复刺激前的行为,其中一种涉及CheYp反馈。与大肠杆菌共有的受体甲基化系统是截然不同的,传递信号的机制也是如此。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The molecular basis of excitation and adaptation during chemotactic sensory transduction in bacteria.

Chemotaxis is the process by which cells sense chemical gradients in their environment and then move towards more favorable conditions. In the case of Escherichia coli, the paradigm organism for chemotaxis, the pathway is now arguably the best characterized in all of biology. If one broadens their perspective to include other species of bacteria, then our knowledge of chemotaxis is far less developed. In particular, the chemotaxis pathways in unrelated species are quite different despite the conservation of many core signaling proteins. Here, we summarize the current state of knowledge regarding the chemotaxis pathways in E. coli and Bacillus subtilis, with a specific focus on the mechanisms for excitation and adaptation. The mechanisms vary widely, and the B. subtilis process, similar to those found in Thermotoga maritima and many archaea, may represent a new paradigm for bacterial chemotaxis. For instance, B. subtilis has three interacting means for restoring prestimulus behavior after stimulation, including one involving CheYp feedback. The one shared with E. coli, the receptor methylation system, is vastly different, as is the mechanism for conveying signals across the membrane.

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