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Updated: Jan 7, 2026

Experimental Column Setup for Studying Anaerobic Biogeochemical Interactions Between Iron OxyHydroxides, Trace Elements, and Bacteria
Published on: December 19, 2017
Microbial antimonate reduction in contaminated sediments driven by photoreactive DOM Under hydrochemical fluctuations
Linao Zhu1, Lele He2, Hanbing Gao1
1Institute of Environmental Engineering, School of Metallurgy and Environment, Central South University, Changsha 410083, PR China.
Abstract:
Mining-impacted river systems often accumulate elevated antimony (Sb) levels; however, the environmental controls on anaerobic microbial Sb(V) reduction remain poorly understood. This study shows that dissolved organic matter (DOM) in sediment can influence Sb(V) redox processes through its photochemical reactivity rather than solely serving as a heterotrophic carbon source. Microcosm experiments combined with field observations were used to assess whether photoreactive DOM facilitates microbial Sb(V) reduction in anoxic sediments. Substantial Sb(V) reduction (up to 42%) occurred only when light, DOM, and active microorganisms were co-present. Photostimulation selectively enriched taxa such as Bradyrhizobium, Cupriavidus, Microbacterium and Skermanella, suggesting their critical role in Sb(V) reduction via utilizing photoreactive DOM-derived photoelectrons. Across three Sb-contaminated river systems, variations in DOM photochemical composition were observed. Model analysis further suggested that DOM photochemical characteristics, rather than Sb concentrations alone, shaped microbial community assembly under environmental fluctuations. These findings expand the understanding of microbial Sb(V) reduction by highlighting the photochemical role of DOM in anoxic sediments.
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