Ferrihydrite-mediated methanotrophic nitrogen fixation in paddy soil under hypoxia

Author:

Yu Linpeng12,Jia Rong1234,Liu Shiqi12,Li Shuan12,Zhong Sining12,Liu Guohong5,Zeng Raymond Jianxiong12,Rensing Christopher12,Zhou Shungui12

Affiliation:

1. Fujian Provincial Key Laboratory of Soil Environmental Health and Regulation , College of Resources and Environment, , Fuzhou 350002 , China

2. Fujian Agriculture and Forestry University , College of Resources and Environment, , Fuzhou 350002 , China

3. Key Laboratory of Land Resources Evaluation and Monitoring in Southwest China , Ministry of Education, , Chengdu, Sichuan Province 610066 , China

4. Sichuan Normal University , Ministry of Education, , Chengdu, Sichuan Province 610066 , China

5. Agricultural Bio-resources Research Institute, Fujian Academy of Agricultural Sciences , Fuzhou 350003 , China

Abstract

Abstract Biological nitrogen fixation (BNF) by methanotrophic bacteria has been shown to play an important role in maintaining fertility. However, this process is still limited to aerobic methane oxidation with sufficient oxygen. It has remained unknown whether and how methanotrophic BNF proceeds in hypoxic environments. Herein, we incubated paddy soils with a ferrihydrite-containing mineral salt medium to enrich methanotrophic bacteria in the presence of methane (20%, v/v) under oxygen constraints (0.27%, v/v). The resulting microcosms showed that ferrihydrite-dependent aerobic methane oxidation significantly contributed (81%) to total BNF, increasing the 15N fixation rate by 13-fold from 0.02 to 0.28 μmol 15N2 (g dry weight soil) -1 d−1. BNF was reduced by 97% when ferrihydrite was omitted, demonstrating the involvement of ferrihydrite in methanotrophic BNF. DNA stable-isotope probing indicated that Methylocystis, Methylophilaceae, and Methylomicrobium were the dominant methanotrophs/methylotrophs that assimilated labeled isotopes (13C or 15N) into biomass. Metagenomic binning combined with electrochemical analysis suggested that Methylocystis and Methylophilaceae had the potential to perform methane-induced BNF and likely utilized riboflavin and c-type cytochromes as electron carriers for ferrihydrite reduction. It was concluded that ferrihydrite mediated methanotrophic BNF by methanotrophs/methylotrophs solely or in conjunction with iron-reducing bacteria. Overall, this study revealed a previously overlooked yet pronounced coupling of iron-dependent aerobic methane oxidation to BNF and improves our understanding of methanotrophic BNF in hypoxic zones.

Funder

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

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