铁在微生物生理学中的多重作用:基于血红素传感器的细菌氧传感。

Advances in microbial physiology Pub Date : 2025-01-01 Epub Date: 2024-12-14 DOI:10.1016/bs.ampbs.2024.10.001
Artur Sergunin, Jakub Vávra, Dominik Pašek, Toru Shimizu, Markéta Martínková
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引用次数: 0

摘要

细菌的氧感知体现了进化压力和对不同氧水平的生理适应之间令人着迷的相互作用。在整个地球历史中,大气的组成经历了重大变化,从缺氧状态到逐渐积累氧气。作为回应,微生物生命已经进化出多种策略来应对这些变化的氧水平,从厌氧代谢到对能量产生至关重要的氧依赖途径,以及真核多细胞生物典型的细胞过程。特别感兴趣的是铁在细菌氧传感系统中的作用,它在适应氧气水平变化方面起着关键作用。只有游离铁、血红素铁和非血红素铁直接感知氧。这些含铁蛋白,如含血红素传感器和铁硫簇蛋白,调节参与氧化应激防御、毒力和生物膜形成的基因表达和酶活性,突出了它们在细菌发病和环境适应中的重要性。本文特别关注了细菌血红素氧传感器从含血红素传感到功能域的氧检测和信号转导机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiple roles for iron in microbial physiology: Bacterial oxygen sensing by heme-based sensors.

Bacterial oxygen sensing embodies a fascinating interplay between evolutionary pressures and physiological adaptations to varying oxygen levels. Throughout Earth's history, the composition of the atmosphere has undergone significant changes, from anoxic conditions to the gradual accumulation of oxygen. In response, microbial life has evolved diverse strategies to cope with these shifting oxygen levels, ranging from anaerobic metabolism to oxygen-dependent pathways crucial for energy production and cellular processes typical for eukaryotic, multicellular organisms. Of particular interest is the role of iron in bacterial oxygen sensing systems, which play pivotal roles in adaptation to changing oxygen levels. Only free iron, heme-iron, and non-heme iron directly sense oxygen. These iron-containing proteins, such as heme-containing sensors and iron-sulfur cluster proteins, regulate the expression of genes and activity of enzymes involved in oxidative stress defence, virulence, and biofilm formation, highlighting their significance in bacterial pathogenesis and environmental adaptation. Special attention in the review is paid to the mechanisms of oxygen detection and signal transduction from heme-containing sensing to functional domains in the case of bacterial heme-based oxygen sensors.

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