Improved scientific knowledge of methanogenesis and methanotrophy needed to slow climate change during the next 30 years

mBio. 2023 Oct 31;14(5):e0205923. doi: 10.1128/mbio.02059-23. Epub 2023 Sep 21.

Abstract

Owing to the high radiative forcing and short atmospheric residence time of methane, abatement of methane emissions offers a crucial opportunity for effective, rapid slowing of climate change. Here, we report on a colloquium jointly sponsored by the American Society for Microbiology and the American Geophysical Union, where 35 national and international experts from academia, the private sector, and government met to review understanding of the microbial processes of methanogenesis and methanotrophy. The colloquium addressed how advanced knowledge of the microbiology of methane production and consumption could inform waste management, including landfills and composts, and three areas of agricultural management: enteric emissions from ruminant livestock, manure management, and rice cultivation. Support for both basic and applied research in microbiology and its applications is urgently needed to accelerate the realization of the large potential for these near-term solutions to counteract climate change.

Keywords: enteric; greenhouse gases; landfills; manure; methane; rice; waste management.

Publication types

  • Editorial

MeSH terms

  • Animals
  • Climate Change*
  • Livestock
  • Methane
  • Nitrous Oxide
  • Waste Management*

Substances

  • Nitrous Oxide
  • Methane