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A methanotrophic bacterium to enable methane removal for climate mitigation

The rapid increase of the potent greenhouse gas methane in the atmosphere creates great urgency to develop and deploy technologies for methane mitigation. One approach to removing methane is to use bacteria for which methane is their carbon and energy source (methanotrophs). Such bacteria naturally...

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Autores principales: He, Lian, Groom, Joseph D., Wilson, Erin H., Fernandez, Janette, Konopka, Michael C., Beck, David A. C., Lidstrom, Mary E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10466089/
https://www.ncbi.nlm.nih.gov/pubmed/37603746
http://dx.doi.org/10.1073/pnas.2310046120
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author He, Lian
Groom, Joseph D.
Wilson, Erin H.
Fernandez, Janette
Konopka, Michael C.
Beck, David A. C.
Lidstrom, Mary E.
author_facet He, Lian
Groom, Joseph D.
Wilson, Erin H.
Fernandez, Janette
Konopka, Michael C.
Beck, David A. C.
Lidstrom, Mary E.
author_sort He, Lian
collection PubMed
description The rapid increase of the potent greenhouse gas methane in the atmosphere creates great urgency to develop and deploy technologies for methane mitigation. One approach to removing methane is to use bacteria for which methane is their carbon and energy source (methanotrophs). Such bacteria naturally convert methane to CO(2) and biomass, a value-added product and a cobenefit of methane removal. Typically, methanotrophs grow best at around 5,000 to 10,000 ppm methane, but methane in the atmosphere is 1.9 ppm. Air above emission sites such as landfills, anaerobic digestor effluents, rice paddy effluents, and oil and gas wells contains elevated methane in the 500 ppm range. If such sites are targeted for methane removal, technology harnessing aerobic methanotroph metabolism has the potential to become economically and environmentally viable. The first step in developing such methane removal technology is to identify methanotrophs with enhanced ability to grow and consume methane at 500 ppm and lower. We report here that some existing methanotrophic strains grow well at 500 ppm methane, and one of them, Methylotuvimicrobium buryatense 5GB1C, consumes such low methane at enhanced rates compared to previously published values. Analyses of bioreactor-based performance and RNAseq-based transcriptomics suggest that this ability to utilize low methane is based at least in part on extremely low non-growth-associated maintenance energy and on high methane specific affinity. This bacterium is a candidate to develop technology for methane removal at emission sites. If appropriately scaled, such technology has the potential to slow global warming by 2050.
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spelling pubmed-104660892023-08-31 A methanotrophic bacterium to enable methane removal for climate mitigation He, Lian Groom, Joseph D. Wilson, Erin H. Fernandez, Janette Konopka, Michael C. Beck, David A. C. Lidstrom, Mary E. Proc Natl Acad Sci U S A Biological Sciences The rapid increase of the potent greenhouse gas methane in the atmosphere creates great urgency to develop and deploy technologies for methane mitigation. One approach to removing methane is to use bacteria for which methane is their carbon and energy source (methanotrophs). Such bacteria naturally convert methane to CO(2) and biomass, a value-added product and a cobenefit of methane removal. Typically, methanotrophs grow best at around 5,000 to 10,000 ppm methane, but methane in the atmosphere is 1.9 ppm. Air above emission sites such as landfills, anaerobic digestor effluents, rice paddy effluents, and oil and gas wells contains elevated methane in the 500 ppm range. If such sites are targeted for methane removal, technology harnessing aerobic methanotroph metabolism has the potential to become economically and environmentally viable. The first step in developing such methane removal technology is to identify methanotrophs with enhanced ability to grow and consume methane at 500 ppm and lower. We report here that some existing methanotrophic strains grow well at 500 ppm methane, and one of them, Methylotuvimicrobium buryatense 5GB1C, consumes such low methane at enhanced rates compared to previously published values. Analyses of bioreactor-based performance and RNAseq-based transcriptomics suggest that this ability to utilize low methane is based at least in part on extremely low non-growth-associated maintenance energy and on high methane specific affinity. This bacterium is a candidate to develop technology for methane removal at emission sites. If appropriately scaled, such technology has the potential to slow global warming by 2050. National Academy of Sciences 2023-08-21 2023-08-29 /pmc/articles/PMC10466089/ /pubmed/37603746 http://dx.doi.org/10.1073/pnas.2310046120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
He, Lian
Groom, Joseph D.
Wilson, Erin H.
Fernandez, Janette
Konopka, Michael C.
Beck, David A. C.
Lidstrom, Mary E.
A methanotrophic bacterium to enable methane removal for climate mitigation
title A methanotrophic bacterium to enable methane removal for climate mitigation
title_full A methanotrophic bacterium to enable methane removal for climate mitigation
title_fullStr A methanotrophic bacterium to enable methane removal for climate mitigation
title_full_unstemmed A methanotrophic bacterium to enable methane removal for climate mitigation
title_short A methanotrophic bacterium to enable methane removal for climate mitigation
title_sort methanotrophic bacterium to enable methane removal for climate mitigation
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10466089/
https://www.ncbi.nlm.nih.gov/pubmed/37603746
http://dx.doi.org/10.1073/pnas.2310046120
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