Carbon source shaped microbial ecology, metabolism and performance in denitrification systems

反硝化 反硝化细菌 异养 生物反应器 生态学 生物量(生态学) 生物 微生物种群生物学 微生物代谢 环境化学 溶解有机碳 碳纤维 化学 细菌 植物 复合数 复合材料 遗传学 有机化学 材料科学 氮气
作者
Yuan Pan,Rui-Zhe Sun,Yan Wang,Guan-Lin Chen,Yingying Fu,Han‐Qing Yu
出处
期刊:Water Research [Elsevier]
卷期号:243: 120330-120330 被引量:31
标识
DOI:10.1016/j.watres.2023.120330
摘要

The limited information on microbial interactions and metabolic patterns in denitrification systems, especially those fed with different carbon sources, has hindered the establishment of ecological linkages between microscale connections and macroscopic reactor performance. In this work, denitrification performance, metabolic patterns, and ecological structure were investigated in parallel well-controlled bioreactors with four representative carbon sources, i.e., methanol, glycerol, acetate, and glucose. After long-term acclimation, significant differences were observed among the four bioreactors in terms of denitrification rates, organic utilization, and heterotrophic bacterial yields. Different carbon sources induced the succession of denitrifying microbiota toward different ecological structures and exhibited distinct metabolic patterns. Methanol-fed reactors showed distinctive microbial carbon utilization pathways and a more intricate microbial interaction network, leading to significant variations in organic utilization and metabolite production compared to other carbon sources. Three keystone taxa belonging to the Verrucomicrobiota phylum, SJA-15 order and the Kineosphaera genus appeared as network hubs in the methanol, glycerol, and acetate-fed systems, playing essential roles in their ecological functions. Several highly connected species were also identified within the glucose-fed system. The close relationship between microbial metabolites, ecological structures, and system performances suggests that this complex network relationship may greatly contribute to the efficient operation of bioreactors.
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