Versatile nitrate-respiring heterotrophs are previously concealed contributors to sulfur cycle

B Bo Shao Y Yuan-Guo Xie L Long Zhang Y Yang Ruan B Bin Liang (Beijing National Laboratory for Molecular Sciences (BNLMS), State Key Laboratory of Rare Earth Materials Chemistry and Applications, PKU-HKU Joint Laboratory in Rare Earth Materials and Bio-inorganic Chemistry, College of Chemistry and Molecular Engineering) R Ruochen Zhang X Xijun Xu W Wei Wang Z Zhengda Lin X Xuanyuan Pei X Xueting Wang L Lei Zhao (School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University) X Xu Zhou X Xiaohui Wu (Key Laboratory of Functional Polymer Materials of Ministry of Education, Institute of Polymer Chemistry, State Key Laboratory of Medicinal Chemical Biology, Frontiers Science Center for New Organic Matter, Haihe Laboratory of Sustainable Chemical Transformations, College of Chemistry) D Defeng Xing A Aijie Wang D Duu-Jong Lee N Nanqi Ren D Donald E. Canfield B Brian P. Hedlund Z Zheng-Shuang Hua C Chuan Chen (Beijing Genomics Institute Research)

Abstract

Abstract Heterotrophic denitrifiers play crucial roles in global carbon and nitrogen cycling. However, their inability to oxidize sulfide renders them vulnerable to this toxic molecule, which inhibits the key enzymatic reaction responsible for reducing nitrous oxide (N2O), thereby raising greenhouse gas emissions. Here, we applied microcosm incubations, community-isotope-corrected DNA stable-isotope probing, and metagenomics to characterize a cohort of heterotrophic denitrifiers in estuarine sediments that thrive by coupling sulfur oxidation with denitrification through chemolithoheterotrophic metabolism. Remarkably, ecophysiology experiments from enrichments demonstrate that such heterotrophs expedite denitrification with sulfur acting as alternative electron sources and substantially curtail N2O emissions in both organic-rich and organic-limited environments. Their flexible, non-sulfur-dependent physiology may confer competitive advantages over conventional heterotrophic denitrifiers in detoxifying sulfide, adapting to organic matter fluctuations, and mitigating greenhouse gas emissions. Our study provides insights into the ecological role of heterotrophic denitrifiers in microbial communities with implications for sulfur cycling and climate change.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 31, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (22)

B

Bo Shao

Y

Yuan-Guo Xie

L

Long Zhang

Y

Yang Ruan

B

Bin Liang

Beijing National Laboratory for Molecular Sciences (BNLMS), State Key Laboratory of Rare Earth Materials Chemistry and Applications, PKU-HKU Joint Laboratory in Rare Earth Materials and Bio-inorganic Chemistry, College of Chemistry and Molecular Engineering

R

Ruochen Zhang

X

Xijun Xu

W

Wei Wang

Z

Zhengda Lin

X

Xuanyuan Pei

X

Xueting Wang

L

Lei Zhao

School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University

X

Xu Zhou

X

Xiaohui Wu

Key Laboratory of Functional Polymer Materials of Ministry of Education, Institute of Polymer Chemistry, State Key Laboratory of Medicinal Chemical Biology, Frontiers Science Center for New Organic Matter, Haihe Laboratory of Sustainable Chemical Transformations, College of Chemistry

D

Defeng Xing

A

Aijie Wang

D

Duu-Jong Lee

N

Nanqi Ren

D

Donald E. Canfield

B

Brian P. Hedlund

Z

Zheng-Shuang Hua

C

Chuan Chen

Beijing Genomics Institute Research