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Updated: Sep 13, 2025

Isolation and Screening from Soil Biodiversity for Fungi Involved in the Degradation of Recalcitrant Materials
Published on: May 16, 2022
Ferrihydrite redox enhanced biodegradation of petroleum hydrocarbons coupling with conversion of soil multi-elements
Xin Yu1, Xiaolin Zhang1, Pinpin Yang1
1Agro-Environmental Protection Institute, Ministry of Agriculture and Rural Affairs / Key Laboratory of Original Agro-Environmental Pollution Prevention and Control, MARA / Tianjin Key Laboratory of Agro-Environment and Agro-Product Safety, Tianjin 300191, China.
Abstract:
In the soil microbial electrochemical remediation, iron transformations commonly govern electron transfer, bioelectricity generation and pollutant degradation. In this study, the conversion of ferrihydrite to goethite (cathode) and hematite (anode) increased electronic circulation channels, with a 67 % increase in charge output and 74 % improvement in petroleum hydrocarbon removal. Simultaneously, ferrihydrite-mediated processes facilitated the activation of recalcitrant organic carbon, resulting in 9 % lignin and 30 % unsaturated hydrocarbon degradation. This transformation shifted organic matter composition toward lower aromaticity and higher reduction potential. Concurrently, introduced-ferrihydrite significantly restructured the microbial community by enriching Desulfuromonas and Pseudomonas, leading to a more complex co-occurrence network, improving the coupled electron transfer and pollutant degradation. Furthermore, ferrihydrite played a regulatory role in the iron cycle with transforming genes upregulating by 171 %, driving coupled biogeochemical transformations. Consequently, processes of denitrification, sulfate reduction and inorganic phosphorus release were enhanced in terms of corresponding genes upregulated by 90 %, 15 % and 40 %, respectively. All these processes were synergistically associated with carbon metabolism with functional genes upregulating by 50 %. In conclusion, ferrihydrite exhibits both electron-mediated and carbon-activated functionalities, thereby providing a support for the remediation of organic contaminated soil as well as the directional regulation of nutrient elements transformation.
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