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Isotopic constraints in methane inversions reveal larger trends in wetland emissions with improved linkage to terrestrial water storage

TitleIsotopic constraints in methane inversions reveal larger trends in wetland emissions with improved linkage to terrestrial water storage
Publication TypeArticolo su Rivista peer-reviewed
Year of Publication2026
AuthorsOh, Youmi, Bruhwiler Lori, Lan Xin, Halder Santanu, Riddell-Young Ben, Basu Sourish, Miller John B., Michel Sylvia, Schuldt Ken, Andrews Arlyn, Biraud Sebastien, Chmura Łukasz, Di Iorio Tatiana, Guerette Elise-Andree, Kozlova Elena, Liu Licheng, Montaguti Simonetta, Morimoto Shinji, Steinbacher Martin, Umezawa Taku, Xueref-Remy Irène, and Zazzeri Giulia
JournalNature Communications
Volume17
Type of ArticleArticle
ISSN20411723
KeywordsAfrica, Asia, atmosphere, carbon, carbon isotope ratio, Carbon Isotopes, chemistry, Climate change, COVID-19, Europe, fossil fuel, methane, Microbial community, North America, South America, Water, water storage, wetland, Wetlands
Abstract

Accurately separating the contributions of different sources to recent atmospheric methane (CH4) growth is crucial for better quantifying the present and future responses of CH4 emissions to changing climate and anthropogenic activity. Here, we run atmospheric inversions to assess global and regional CH4 emissions from microbial, fossil, and pyrogenic sources from 2000 to 2022, using measurements of atmospheric CH4 and its stable carbon isotope ratio (13C:12C, expressed relative to a standard as δ13C-CH4). We confirm that global total CH4 emissions has increased by 15% from 2000 to 2022, with dominated contribution from microbial emissions. Both microbial and fossil emissions increased during 2007–2013 relative to 2000–2006, with the largest contributions from temperate Asia. From 2014–2017, microbial emissions from tropical regions, particularly South America and Africa, were the dominant driver of the overall increase, while fossil emissions remained stable in Europe and North America. Between 2020 and 2022, microbial emissions surged in the African and Asian tropics, whereas fossil emissions declined across most industrial regions. Notably, inversions constrained only by CH4 observations did not capture the decline in fossil emissions during 2020–2022, a decline potentially related to the COVID-19 pandemic, policy-driven changes, and decreases in CH4 emissions intensity, highlighting the critical role of isotopic measurements in independently verifying changes in fossil emissions. Further, our inversion with isotopic constraints estimates a more prominent increase in wetland emissions that is 20–30% more strongly correlated with variations in terrestrial water storage during 2003–2022, demonstrating the importance of climate-driven natural sources in explaining long-term CH4 growth. © This is a U.S. Government work and not under copyright protection in the US; foreign copyright protection may apply 2026.

Notes

Cited by: 1; All Open Access; Gold Open Access; Green Open Access

URLhttps://www.scopus.com/pages/publications/105046904469?origin=resultslist
DOI10.1038/s41467-026-74777-4
Citation KeyOh2026
PubMed ID42373624