Insights into the evolutionary and ecological adaption strategies of nirS‐ and nirK‐type denitrifying communities

Author:

Ming Yuzhen12ORCID,Abdullah Al Mamun13,Zhang Dandan1,Zhu Wengen13,Liu Huanping1,Cai Lanlan2,Yu Xiaoli1,Wu Kun1,Niu Mingyang13,Zeng Qinglu2,He Zhili134ORCID,Yan Qingyun134

Affiliation:

1. Marine Synthetic Ecology Research Center, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Guangdong Provincial Observation and Research Station for Marine Ranching in Lingdingyang Bay China‐ASEAN Belt and Road Joint Laboratory on Mariculture Technology Zhuhai China

2. Department of Ocean Science The Hong Kong University of Science and Technology Hong Kong China

3. School of Marine Sciences Sun Yat‐Sen University Zhuhai China

4. State Key Laboratory for Biocontrol Sun Yat‐Sen University Guangzhou China

Abstract

AbstractDenitrification is a crucial process in the global nitrogen cycle, in which two functionally equivalent genes, nirS and nirK, catalyse the critical reaction and are usually used as marker genes. The nirK gene can function independently, whereas nirS requires additional genes to encode nitrite reductase and is more sensitive to environmental factors than nirK. However, the ecological differentiation mechanisms of those denitrifying microbial communities and their adaptation strategies to environmental stresses remain unclear. Here, we conducted metagenomic analysis for sediments and bioreactor samples from Lake Donghu, China. We found that nirS‐type denitrifying communities had a significantly lower horizontal gene transfer frequency than that of nirK‐type denitrifying communities, and nirS gene phylogeny was more congruent with taxonomy than that of nirK gene. Metabolic reconstruction of metagenome‐assembled genomes further revealed that nirS‐type denitrifying communities have robust metabolic systems for energy conservation, enabling them to survive under environmental stresses. Nevertheless, nirK‐type denitrifying communities seemed to adapt to oxygen‐limited environments with the ability to utilize various carbon and nitrogen compounds. Thus, this study provides novel insights into the ecological differentiation mechanism of nirS and nirK‐type denitrifying communities, as well as the regulation of the global nitrogen cycle and greenhouse gas emissions.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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