生物膜
群体感应
地杆菌
信号转导
硫化地杆菌
转录组
细胞生物学
鸟苷酸
化学
高丝氨酸
代谢途径
细胞信号
生物化学
生物
细菌
新陈代谢
基因
基因表达
遗传学
核苷酸
作者
Qian Zhu,Yanyan Zheng,Xingwang Zhou,Dunjia Wang,Mengjiao Yuan,Ding-Kang Qian,Sha Liang,Wenbo Yu,Jiakuan Yang,Huijie Hou,Jingping Hu
标识
DOI:10.1093/ismeco/ycae096
摘要
Abstract Electrogenic biofilms, which have attracted considerable attention in simultaneous wastewater treatment and energy recovery in bioelectrochemical systems, are regulated by chemical communication and potassium channel-mediated electrical signaling. However, how these two communication pathways interact with each other has not been thoroughly investigated. This study first explored the roles of chemical communication, including intracellular bis-(3′-5′)-cyclic dimeric guanosine monophosphate (c-di-GMP) and extracellular N-acyl-homoserine lactone (AHL)-mediated quorum sensing, in electrogenic biofilm formation through an integrated analysis of transcriptomics and metabolomics. Electrical signaling disruption inhibited the formation and electroactivity of Geobacter sulfurreducens biofilm, which was mainly ascribed to the reduction in biofilm viability and extracellular protein/polysaccharide ratio. The upregulation of expression levels of genes encoding c-di-GMP and AHL synthesis by transcriptomic analysis, and the increased secretion of N-butanoyl-L-homoserine lactone by metabolomic analysis confirmed the enhancement of chemical communication under electrical signaling disruption, thus indicating a compensatory mechanism among different signaling pathways. Furthermore, protein–protein interaction network showed the convergence of different signaling pathways, with c-di-GMP-related genes acting as central bridges. This study highlights the interaction of different signaling pathways, especially the resilience of c-di-GMP signaling to adverse external stresses, thereby laying the foundation for facilitating electrogenic biofilm formation under adverse conditions in practical applications.
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