{"response":{"status":"ok","message_type":"publication"},"id":2426,"citation":"Chen et al., 2022, Environmental Microbiology","doi":"10.1111/1462-2920.15848","url":"https://api.seqco.de/v1/publications/2426.json","link_ext":"https://doi.org/10.1111/1462-2920.15848","title":"Anaerobic methane oxidation linked to Fe(III) reduction in a\n                    \u003cscp\u003e\n                      \u003ci\u003eCandidatus Methanoperedens\u003c/i\u003e\n                    \u003c/scp\u003e\n                    \u003ci\u003e‐\u003c/i\u003e\n                    enriched consortium from the cold Zoige wetland at Tibetan Plateau","journal":"Environmental Microbiology","journal_loc":"24 (2)","journal_date":"2022-02-01","pub_type":"journal-article","abstract":"\u003cjats:title\u003eSummary\u003c/jats:title\u003e\n                  \u003cjats:p\u003e\n                    Anaerobic oxidation of methane (AOM) is a microbial process degrading ample methane in anoxic environments, and\n                    \u003cjats:italic\u003eCa. Methanoperedens\u003c/jats:italic\u003e\n                    mediated nitrate‐ or metal‐reduction linked AOM is believed important in freshwater systems. This work, via 16S rRNA gene diversity survey and 16S rRNA quantification, found abundant\n                    \u003cjats:italic\u003eCa. Methanoperedens\u003c/jats:italic\u003e\n                    along with iron in the cold Zoige wetland at Tibetan Plateau. The wetland soil microcosm performed Fe(III) reduction, rather than nitrate‐ nor sulphate‐reduction, coupled methane oxidation (3.87 μmol d\n                    \u003cjats:sup\u003e−1\u003c/jats:sup\u003e\n                    ) with 32.33 μmol Fe(II) accumulation per day at 18°C, but not at 30°C. A metagenome‐assembled genome (MAG) recovered from the microcosm exhibits ~74% average nucleotide identity with the reported\n                    \u003cjats:italic\u003eCa. Methanoperedens\u003c/jats:italic\u003e\n                    spp. that perform Fe(III) reduction linked AOM, thus a novel species\n                    \u003cjats:italic\u003eCa. Methanoperedens psychrophilus\u003c/jats:italic\u003e\n                    was proposed.\n                    \u003cjats:italic\u003eCa. M. psychrophilus\u003c/jats:italic\u003e\n                    contains the whole suite of CO\n                    \u003cjats:sub\u003e2\u003c/jats:sub\u003e\n                    reductive methanogenic genes presumably involving in AOM via a reverse direction, and comparative genome analysis revealed its unique gene categories: the multi‐heme clusters (MHCs) cytochromes, the S‐layer proteins highly homologous to those recovered from lower temperature environments and type IV pili, those could confer\n                    \u003cjats:italic\u003eCa. M. psychrophilus\u003c/jats:italic\u003e\n                    of cold adaptability. Therefore, this work reports the first methanotroph implementing AOM in an alpine wetland.\n                  \u003c/jats:p\u003e","long_citation_html":"Chen et al. (2022). Anaerobic methane oxidation linked to Fe(III) reduction in a\n                    \u0026lt;scp\u0026gt;\n                      \u003ci\u003eCandidatus Methanoperedens\u003c/i\u003e\n                    \u0026lt;/scp\u0026gt;\n                    \u003ci\u003e‐\u003c/i\u003e\n                    enriched consortium from the cold Zoige wetland at Tibetan Plateau. \n\u003ci\u003eEnvironmental Microbiology\u003c/i\u003e.\n\u003ca href=\"https://doi.org/10.1111/1462-2920.15848\" target=\"_blank\"\u003eDOI: 10.1111/1462-2920.15848\u003c/a\u003e\n","created_at":"2021-12-24T23:00:11.623Z","updated_at":"2025-11-06T13:52:27.693Z","authors":[{"id":9806,"given":"Lin","family":"Chen","created_at":"2021-12-24T23:00:11.664Z","updated_at":"2021-12-24T23:00:11.664Z","url":"https://api.seqco.de/v1/authors/9806.json"},{"id":9807,"given":"Lingyan","family":"Li","created_at":"2021-12-24T23:00:11.687Z","updated_at":"2021-12-24T23:00:11.687Z","url":"https://api.seqco.de/v1/authors/9807.json"},{"id":8324,"given":"Shengjie","family":"Zhang","created_at":"2021-03-18T08:44:18.671Z","updated_at":"2021-03-18T08:44:18.671Z","url":"https://api.seqco.de/v1/authors/8324.json"},{"id":9808,"given":"Wenting","family":"Zhang","created_at":"2021-12-24T23:00:11.709Z","updated_at":"2021-12-24T23:00:11.709Z","url":"https://api.seqco.de/v1/authors/9808.json"},{"id":9809,"given":"Kai","family":"Xue","created_at":"2021-12-24T23:00:11.722Z","updated_at":"2021-12-24T23:00:11.722Z","url":"https://api.seqco.de/v1/authors/9809.json"},{"id":9810,"given":"Yanfen","family":"Wang","created_at":"2021-12-24T23:00:11.735Z","updated_at":"2021-12-24T23:00:11.735Z","url":"https://api.seqco.de/v1/authors/9810.json"},{"id":9811,"given":"Xiuzhu","family":"Dong","created_at":"2021-12-24T23:00:11.747Z","updated_at":"2021-12-24T23:00:11.747Z","url":"https://api.seqco.de/v1/authors/9811.json"}],"names":[{"id":355,"name":"Candidatus Methanoperedens","url":"https://api.seqco.de/v1/names/355.json","uri":"https://seqco.de/i:355"}],"subjects":[{"id":2,"name":"Ecology, Evolution, Behavior and Systematics","url":"https://api.seqco.de/v1/subjects/2.json"},{"id":9,"name":"Microbiology","url":"https://api.seqco.de/v1/subjects/9.json"}]}