Electroactive ecosystem insights from corrosion microbiomes inform gut microbiome modulation

Liam M Jones, Sahar El Aidy
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Abstract

Electroactive microorganisms influence environmental and host-associated ecosystems through their ability to mediate extracellular electron transfer. This review explores parallels between EAM-driven microbiologically influenced corrosion systems and the human gut microbiome. In corrosion, EAMs contribute to biofilm formation, redox cycling, and material degradation through mechanisms such as direct electron transfer and syntrophic interactions. Similarly, gut-associated EAMs regulate redox balance, drive short-chain fatty acid production, and shape host-microbe interactions. Despite differing contexts, both systems share traits like anoxic niches, biofilm formation, and metabolic adaptability. Insights from well-characterized corrosion microbiomes offer valuable frameworks to understand microbial resilience, electron transfer strategies, and interspecies cooperation in the gut. Bridging knowledge between these systems can inform microbiome engineering approaches aimed at promoting gut health, highlighting the need for further functional metagenomics and exploration of archaeal contributions to biofilm stability and redox modulation.
从腐蚀微生物组电活性生态系统的见解告知肠道微生物组调节
电活性微生物通过其介导细胞外电子转移的能力影响环境和宿主相关的生态系统。这篇综述探讨了eam驱动的微生物影响腐蚀系统和人类肠道微生物组之间的相似之处。在腐蚀中,eam通过直接电子转移和协同作用等机制促进生物膜的形成、氧化还原循环和材料降解。类似地,肠道相关的eam调节氧化还原平衡,驱动短链脂肪酸的产生,并形成宿主-微生物的相互作用。尽管环境不同,但两种系统都具有缺氧生态位、生物膜形成和代谢适应性等特征。从表征良好的腐蚀微生物组中获得的见解为理解肠道中的微生物弹性、电子转移策略和物种间合作提供了有价值的框架。这些系统之间的桥梁知识可以为旨在促进肠道健康的微生物组工程方法提供信息,强调进一步的功能宏基因组学和探索古菌对生物膜稳定性和氧化还原调节的贡献的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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