Zheng Chen, Yilin Chen, Yian Jia, Jing Zhang, Liyun Ge, Honghui Wang, Jinlin Chen, Ruotong Mao, Shuyun Zhang, Hui Gao, Siwen Xia
Constructed wetlands face the dual challenge of arsenic (As) mobilization and greenhouse gas (GHG) emissions under flooded anoxic conditions. Moving beyond single-process remediation, this study developed a synergistic strategy through the co-application of manganous nitrate (Mn(NO3)2) and pyrolusite (MnO2) in microcosms simulating As-contaminated paddy-field wetlands. The results demonstrated that the Mn(NO3)2+MnO2 treatment achieved near-complete As(III) immobilization in the overlying water, significantly outperforming other amendments (KNO3-alone, MnO2-alone and KNO3+MnO2) during a 24d-incubation period. Concurrently, it substantially suppressed cumulative emissions of CH4 and N2O by approximately 35% and 61% than that of the KNO3-alone treatment. Metagenomic analysis revealed that this dual amendment reshaped the microbial community and metabolism. It enriched key taxa such as the dissimilatory nitrate reduction to ammonium (DNRA)-associated archaeon Candidatus Methanoperedens nitroreducens and nitrate-reducing coupled with Fe/Mn-oxidizing bacteria (e.g., Propioniciclava, Zoogloea, and Bryobacter). Meanwhile, the combined amendment also significantly increased the abundance of critical functional genes, including the N2O-reductase gene nosZ, DNRA marker gene nrfA and CH4-oxidation genes (pmoA and reverse methanogenesis-associated mcrA). The underlying mechanism relies on a regenerative Mn(II)/Mn(IV) cycle driven by the biotransformation of Mn(NO3)2. This cycle strategically redirects electron flow from pollutant‑mobilizing pathways, e.g., methanogenesis and dissimilatory Fe/As reduction toward As(III) immobilization and low‑carbon‑emission processes. These processes specifically include anaerobic oxidation of methane coupled to Mn(IV) reduction (AOM‑MnR), nitrate-dependent anaerobic methane oxidation (n-DAOM) and complete denitrification. Overall, this work provides a novel "mineral-electron switch coupled with nitrate-metabolic trigger" framework, offering an effective and sustainable synergy-based approach for the co-management of metalloid and GHG pollution in flooded anoxic environments.