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Updated: Sep 26, 2026

A Microfluidic Platform to Investigate Microbial Precipitation of Metal Oxides in Porous Media
Published on: June 12, 2026
Mineral-supported microbial functional differentiation across a vertical gradient in a vanadium-titanium magnetite
Yongheng Jiang1, Bailun Liu2, Yuefei Ding2
1The Key Laboratory of Water and Sediment Sciences, College of Environmental Sciences and Engineering, Peking University, 100871 Beijing, People's Republic of China; Beijing Key Laboratory of Mineral Environmental Function, School of Earth and Space Sciences, Peking University, 100871 Beijing, People's Republic of China.
Abstract:
Vanadium-titanium magnetite (VTM) mines are often associated with metal contamination, organic carbon depletion, and ecological degradation, yet how indigenous microbiomes respond to vertical geochemical heterogeneity remains poorly understood. Here, we investigated a ∼260 m vertical gradient in the Zhulan Iron Mine, China, by integrating elemental and mineralogical analyses with 16S rRNA gene amplicon and metagenomic profiling. Pronounced vertical stratification was observed. The lower-elevation section was enriched in vanadium (V) and Fe(II)-bearing minerals and harbored microbial communities with lower diversity but a more highly connected co-occurrence network. Representative lower-section taxa, including Thiobacillus, Sulfuricaulis, and Chloroflexota members, were linked to functional potentials for V-associated redox transformation, Fe/S metabolism, extracellular electron transfer, and autotrophic carbon fixation. These patterns suggest that Fe(II)-bearing minerals, particularly magnetite, may serve as potential inorganic electron sources supporting mineral-based lithotrophy and carbon fixation under metal-rich and organic-carbon-limited conditions. In contrast, the upper-elevation section exhibited lower V stress, higher microbial diversity, sparse vegetation, and enrichment of heterotrophic and plant- associated taxa, such as Sphingomonas, Flavisolibacter, and Actinomycetota, indicating a shift toward plant-supported microbial functions during early ecological recovery. Overall, this study links vertical geochemical stratification to microbial functional differentiation and highlights indigenous mineral-microbe interactions as a potential basis for targeted, low-input restoration strategies in metal-contaminated mining ecosystems.
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