Related Experiment Video
Updated: Jul 1, 2026

Agarose-Based Model Ecosystem for Cultivating Methanotrophs in a Methane-Oxygen Counter Gradient
Published on: September 6, 2024
Syntrophic interactions driving anaerobic methane oxidation in deep-sea cold seeps revealed by DNA-SIP
Qiuyun Jiang1,2, Hao Liu1, Hongmei Jing1,3
1State Key Laboratory of Deep-Sea Science and Intelligent Technology, Institute of Deep-sea Science and Engineering, Chinese Academy of Sciences, Sanya 572000, China.
Abstract:
Anaerobic oxidation of methane is a key process reducing methane emissions in oxygen-depleted marine environments such as deep-sea cold seeps. However, the stability and adaptability of microbial interactions driving this process remain poorly understood. Here, we combined stable isotope probing, tracer incubations, and bacterial inhibition experiments to investigate methane-oxidizing communities in sediments from the South China Sea. We found that methane oxidation was sustained by interactions between distinct archaeal and bacterial groups under different electron acceptor conditions. Inhibition experiments revealed tightly coupled microbial partnerships, while community shifts toward alternative metabolic pathways maintained overall methane oxidation rates. These results demonstrate functional redundancy and metabolic flexibility within microbial consortia. Our findings highlighted how dynamic environmental conditions supported multiple overlapping pathways, ensuring stable methane consumption. This work provided insights into the resilience of biogeochemical processes and informs future strategies for methane mitigation.
Related Concept Videos
Deep Sea Microbial Ecology
Microbes and Methanogenesis
Microbial Mats
Marine Microbial Ecology
Microbial Interactions: Mutualism
Metabolism of Chemolithotrophs

