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首页> 外文期刊>Antioxidants and redox signalling >Novel bacterial gas sensor proteins with transition metal-containing prosthetic groups as active sites
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Novel bacterial gas sensor proteins with transition metal-containing prosthetic groups as active sites

机译:以含过渡金属的修复基团为活性位点的新型细菌气体传感器蛋白

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摘要

Significance: Gas molecules function as signaling molecules in many biological regulatory systems responsible for transcription, chemotaxis, and other complex physiological processes. Gas sensor proteins play a crucial role in regulating such biological systems in response to gas molecules. Recent Advances: New sensor proteins that sense oxygen or nitric oxide have recently been found, and they have been characterized by X-ray crystallographic and/or spectroscopic analysis. It has become clear that the interaction between a prosthetic group and gas molecules triggers dynamic structural changes in the protein backbone when a gas sensor protein senses gas molecules. Gas sensor proteins employ novel mechanisms to trigger conformational changes in the presence of a gas. Critical Issues: In gas sensor proteins that have iron-sulfur clusters as active sites, the iron-sulfur clusters undergo structural changes, which trigger a conformational change. Heme-based gas sensor proteins reconstruct hydrogen-bonding networks around the heme and heme-bound ligand. Future Direction: Gas sensor proteins have two functional states, on and off, which are active and inactive, respectively, for subsequent signal transduction in response to their physiological effector molecules. To fully understand the structure-function relationships of gas sensor proteins, it is vital to perform X-ray crystal structure analyses of full-length proteins in both the on and off states.
机译:意义:气体分子在负责转录,趋化性和其他复杂生理过程的许多生物调节系统中充当信号分子。气体传感器蛋白在响应气体分子调节此类生物系统中起着至关重要的作用。最新进展:最近发现了可感知氧气或一氧化氮的新型传感器蛋白,并已通过X射线晶体学和/或光谱分析对其进行了表征。已经清楚的是,当气体传感器蛋白质感测气体分子时,假体基团与气体分子之间的相互作用会触发蛋白质骨架中的动态结构变化。气体传感器蛋白采用新颖的机制在存在气体时触发构象变化。关键问题:在以铁硫簇为活性位点的气体传感器蛋白质中,铁硫簇发生结构变化,从而触发构象变化。基于血红素的气体传感器蛋白可在血红素和血红素结合的配体周围重建氢键网络。未来方向:气体传感器蛋白具有两个功能状态,分别为开和关,分别对它们的生理效应分子有反应和不活泼,以用于随后的信号转导。为了充分了解气体传感器蛋白质的结构-功能关系,至关重要的是,对处于开启和关闭状态的全长蛋白质进行X射线晶体结构分析。

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