Water quality drives the distribution of freshwater cable bacteria

Cable bacteria are a group of recently found filamentous sulfide-oxidizing Desulfobulbaceae that significantly impact biogeochemical cycling. However, the limited understanding of cable bacteria distribution patterns and the driving force hindered our abilities to evaluate and maximize their contrib...

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Veröffentlicht in:The Science of the total environment 2022-10, Vol.841, p.156468-156468, Article 156468
Hauptverfasser: Dong, Meijun, Yang, Shan, Yang, Xunan, Xu, Meiying, Hu, Wenzhe, Wang, Bin, Huang, Youda, Xu, Jiarou, Lu, Huibin, Yang, Yonggang, Chen, Xingjuan, Huang, Haobin, Sun, Guoping
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Sprache:eng
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Zusammenfassung:Cable bacteria are a group of recently found filamentous sulfide-oxidizing Desulfobulbaceae that significantly impact biogeochemical cycling. However, the limited understanding of cable bacteria distribution patterns and the driving force hindered our abilities to evaluate and maximize their contribution to environmental health. We evaluated cable bacteria assemblages from ten river sediments in the Pearl River Delta, China. The results revealed a clear biogeographic distribution pattern of cable bacteria, and their communities were deterministically assembled through water quality-driven selection. Cable bacteria are diverse in the river sediments with a few generalists and many specialists, and the water quality IV and V environments are the “hot spot.” We then provided evidence on their morphology, function, and genome to demonstrate how water quality might shape the cable bacteria assemblages. Reduced cell width, inhibited function, and water quality-related adaptive genomic traits were detected in sulfide-limited water quality III and contaminant-stressed water quality VI environments. Specifically, those genomic traits were contributed to carbon and sulfur metabolism in the water quality III environment and stress resistance in the water quality VI environment. Overall, these findings provided a helpful baseline in evaluating the contribution of cable bacteria in the freshwater ecosystem and suggested that their high diversity and flexibility in phylogeny, morphology, and genome allowed them to adapt and contribute to various environmental conditions. [Display omitted] •Cable bacteria impact biochemical processes in the water-sedimentary interface.•The most diverse cable bacteria were detected in water quality IV and V environments.•Water quality drove the diversity and distribution of cable bacteria.•High diversity & flexibility ensured cable bacteria's broad contribution to river health.
ISSN:0048-9697
1879-1026
DOI:10.1016/j.scitotenv.2022.156468