School of Environmental Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China; College of Chemistry and Chemical Engineering, Hubei Key Laboratory of Pollutant Analysis and Reuse Technology, Hubei Normal University, Huangshi 435002, China.
School of Environmental Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China; Hubei Provincial Engineering Laboratory of Solid Waste Treatment, Disposal and Recycling, 1037 Luoyu Road, Wuhan, Hubei 430074, China.
Water Res. 2023 Sep 1;243:120421. doi: 10.1016/j.watres.2023.120421. Epub 2023 Jul 27.
Electrogenic biofilms in microbial electrochemical systems have played significant roles in simultaneous wastewater treatment and energy recovery owing to their unique extracellular electron transfer. Their formation has been shown to be regulated by electrical and chemical communication, but the interaction between these signal communication pathways has not been studied. This research investigated the coordination between intracellular c-di-GMP signaling and reinforced quorum sensing with or without exogenous HSL (a common quorum sensing molecule), on the formation of mixed-cultured electrogenic biofilm under electrical signaling disruption by tetraethylammonium (TEA, a broad-range potassium channel blocker). Intracellular c-di-GMP was spontaneously reinforced in response to TEA stress, and metagenomic analysis revealed that the dominant DGC (the genes for producing c-di-GMP) induced the eventual biofilm formation by mediating exopolysaccharide synthesis. Meanwhile, reinforced quorum sensing by exogenous HSL could also benefit the biofilm restoration, however, it alleviated the TEA-induced communication stress, resulting in the weakening of c-di-GMP dominance. Interestingly, suppressing electrical communication with or without HSL addition both induced selective enrichment of Geobacter of 85.5% or 30.1% respectively. Functional contribution analysis revealed the significant roles of Geobacter and Thauera in c-di-GMP signaling, especially Thauera in resistance to TEA stress. This study proposed a potential strategy for electrogenic biofilm regulation from the perspectives of cell-to-cell communication.
电化学生物膜系统中的发电生物膜因其独特的胞外电子传递而在同时进行废水处理和能量回收方面发挥了重要作用。已经表明其形成受电和化学通讯调节,但这些信号通讯途径之间的相互作用尚未得到研究。本研究在电信号中断(四乙铵,一种广泛的钾通道阻断剂)下,考察了细胞内 c-di-GMP 信号与强化群体感应之间的协调作用,以及是否存在外源 HSL(一种常见的群体感应分子)。在 TEA 应激下,细胞内 c-di-GMP 自发增强,宏基因组分析表明,占主导地位的 DGC(产生 c-di-GMP 的基因)通过介导胞外多糖合成,最终介导混合培养电生物膜的形成。同时,外源 HSL 强化群体感应也有利于生物膜的恢复,但它减轻了 TEA 诱导的通讯压力,导致 c-di-GMP 优势减弱。有趣的是,无论是否添加 HSL 抑制电通讯都会分别导致 85.5%或 30.1%的 Geobacter 选择性富集。功能贡献分析揭示了 Geobacter 和 Thauera 在 c-di-GMP 信号中的重要作用,特别是 Thauera 在抵抗 TEA 应激方面的作用。本研究从细胞间通讯的角度提出了一种电生物膜调控的潜在策略。