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Co‐cultivation of Thermoanaerobacter strains with a methanogenic partner enhances glycerol conversion

Glycerol‐rich waste streams produced by the biodiesel, bioethanol and oleochemical industries can be treated and valorized by anaerobic microbial communities to produce methane. As current knowledge of the microorganisms involved in thermophilic glycerol conversion to methane is scarce, thermophilic...

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Autores principales: Magalhães, Carla Pereira, Ribeiro, Joaquim A., Guedes, Ana P., Arantes, Ana L., Sousa, Diana Z., Stams, Alfons J. M., Alves, Maria M., Cavaleiro, Ana Júlia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7264899/
https://www.ncbi.nlm.nih.gov/pubmed/32154666
http://dx.doi.org/10.1111/1751-7915.13506
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author Magalhães, Carla Pereira
Ribeiro, Joaquim A.
Guedes, Ana P.
Arantes, Ana L.
Sousa, Diana Z.
Stams, Alfons J. M.
Alves, Maria M.
Cavaleiro, Ana Júlia
author_facet Magalhães, Carla Pereira
Ribeiro, Joaquim A.
Guedes, Ana P.
Arantes, Ana L.
Sousa, Diana Z.
Stams, Alfons J. M.
Alves, Maria M.
Cavaleiro, Ana Júlia
author_sort Magalhães, Carla Pereira
collection PubMed
description Glycerol‐rich waste streams produced by the biodiesel, bioethanol and oleochemical industries can be treated and valorized by anaerobic microbial communities to produce methane. As current knowledge of the microorganisms involved in thermophilic glycerol conversion to methane is scarce, thermophilic glycerol‐degrading methanogenic communities were enriched. A co‐culture of Thermoanaerobacter and Methanothermobacter species was obtained, pointing to a non‐obligately syntrophic glycerol degradation. This hypothesis was further studied by incubating Thermoanaerobacter brockii subsp. finnii and T. wiegelii with glycerol (10 mM) in pure culture and with different hydrogenotrophic methanogens. The presence of the methanogen accelerated glycerol fermentation by the two Thermoanaerobacter strains up to 3.3 mM day(−1), corresponding to 12 times higher volumetric glycerol depletion rates in the methanogenic co‐cultures than in the pure bacterial cultures. The catabolic pathways of glycerol conversion were identified by genome analysis of the two Thermoanaerobacter strains. NADH and reduced ferredoxin formed in the pathway are linked to proton reduction, which becomes thermodynamically favourable when the hydrogen partial pressure is kept low by the hydrogenotrophic methanogenic partner.
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spelling pubmed-72648992020-06-03 Co‐cultivation of Thermoanaerobacter strains with a methanogenic partner enhances glycerol conversion Magalhães, Carla Pereira Ribeiro, Joaquim A. Guedes, Ana P. Arantes, Ana L. Sousa, Diana Z. Stams, Alfons J. M. Alves, Maria M. Cavaleiro, Ana Júlia Microb Biotechnol Research Articles Glycerol‐rich waste streams produced by the biodiesel, bioethanol and oleochemical industries can be treated and valorized by anaerobic microbial communities to produce methane. As current knowledge of the microorganisms involved in thermophilic glycerol conversion to methane is scarce, thermophilic glycerol‐degrading methanogenic communities were enriched. A co‐culture of Thermoanaerobacter and Methanothermobacter species was obtained, pointing to a non‐obligately syntrophic glycerol degradation. This hypothesis was further studied by incubating Thermoanaerobacter brockii subsp. finnii and T. wiegelii with glycerol (10 mM) in pure culture and with different hydrogenotrophic methanogens. The presence of the methanogen accelerated glycerol fermentation by the two Thermoanaerobacter strains up to 3.3 mM day(−1), corresponding to 12 times higher volumetric glycerol depletion rates in the methanogenic co‐cultures than in the pure bacterial cultures. The catabolic pathways of glycerol conversion were identified by genome analysis of the two Thermoanaerobacter strains. NADH and reduced ferredoxin formed in the pathway are linked to proton reduction, which becomes thermodynamically favourable when the hydrogen partial pressure is kept low by the hydrogenotrophic methanogenic partner. John Wiley and Sons Inc. 2020-03-10 /pmc/articles/PMC7264899/ /pubmed/32154666 http://dx.doi.org/10.1111/1751-7915.13506 Text en © 2019 The Authors. Microbial Biotechnology published by John Wiley & Sons Ltd and Society for Applied Microbiology. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Magalhães, Carla Pereira
Ribeiro, Joaquim A.
Guedes, Ana P.
Arantes, Ana L.
Sousa, Diana Z.
Stams, Alfons J. M.
Alves, Maria M.
Cavaleiro, Ana Júlia
Co‐cultivation of Thermoanaerobacter strains with a methanogenic partner enhances glycerol conversion
title Co‐cultivation of Thermoanaerobacter strains with a methanogenic partner enhances glycerol conversion
title_full Co‐cultivation of Thermoanaerobacter strains with a methanogenic partner enhances glycerol conversion
title_fullStr Co‐cultivation of Thermoanaerobacter strains with a methanogenic partner enhances glycerol conversion
title_full_unstemmed Co‐cultivation of Thermoanaerobacter strains with a methanogenic partner enhances glycerol conversion
title_short Co‐cultivation of Thermoanaerobacter strains with a methanogenic partner enhances glycerol conversion
title_sort co‐cultivation of thermoanaerobacter strains with a methanogenic partner enhances glycerol conversion
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7264899/
https://www.ncbi.nlm.nih.gov/pubmed/32154666
http://dx.doi.org/10.1111/1751-7915.13506
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