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Hyperthermophilic methanogenic archaea act as high-pressure CH4 cell factories.
Mauerhofer, Lisa-Maria; Zwirtmayr, Sara; Pappenreiter, Patricia; Bernacchi, Sébastien; Seifert, Arne H; Reischl, Barbara; Schmider, Tilman; Taubner, Ruth-Sophie; Paulik, Christian; Rittmann, Simon K-M R.
Afiliación
  • Mauerhofer LM; Archaea Physiology & Biotechnology Group, Department Functional and Evolutionary Ecology, Universität Wien, Wien, Austria.
  • Zwirtmayr S; Institute for Chemical Technology of Organic Materials, Johannes Kepler Universität Linz, Linz, Austria.
  • Pappenreiter P; Institute for Chemical Technology of Organic Materials, Johannes Kepler Universität Linz, Linz, Austria.
  • Bernacchi S; Krajete GmbH, Linz, Austria.
  • Seifert AH; Krajete GmbH, Linz, Austria.
  • Reischl B; Archaea Physiology & Biotechnology Group, Department Functional and Evolutionary Ecology, Universität Wien, Wien, Austria.
  • Schmider T; Krajete GmbH, Linz, Austria.
  • Taubner RS; Archaea Physiology & Biotechnology Group, Department Functional and Evolutionary Ecology, Universität Wien, Wien, Austria.
  • Paulik C; Archaea Physiology & Biotechnology Group, Department Functional and Evolutionary Ecology, Universität Wien, Wien, Austria.
  • Rittmann SKR; Institute for Chemical Technology of Organic Materials, Johannes Kepler Universität Linz, Linz, Austria.
Commun Biol ; 4(1): 289, 2021 03 05.
Article en En | MEDLINE | ID: mdl-33674723
ABSTRACT
Bioprocesses converting carbon dioxide with molecular hydrogen to methane (CH4) are currently being developed to enable a transition to a renewable energy production system. In this study, we present a comprehensive physiological and biotechnological examination of 80 methanogenic archaea (methanogens) quantifying growth and CH4 production kinetics at hyperbaric pressures up to 50 bar with regard to media, macro-, and micro-nutrient supply, specific genomic features, and cell envelope architecture. Our analysis aimed to systematically prioritize high-pressure and high-performance methanogens. We found that the hyperthermophilic methanococci Methanotorris igneus and Methanocaldococcoccus jannaschii are high-pressure CH4 cell factories. Furthermore, our analysis revealed that high-performance methanogens are covered with an S-layer, and that they harbour the amino acid motif Tyrα444 Glyα445 Tyrα446 in the alpha subunit of the methyl-coenzyme M reductase. Thus, high-pressure biological CH4 production in pure culture could provide a purposeful route for the transition to a carbon-neutral bioenergy sector.
Asunto(s)

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Microbiología Industrial / Methanocaldococcaceae / Methanocaldococcus / Metano Idioma: En Revista: Commun Biol Año: 2021 Tipo del documento: Article País de afiliación: Austria

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Microbiología Industrial / Methanocaldococcaceae / Methanocaldococcus / Metano Idioma: En Revista: Commun Biol Año: 2021 Tipo del documento: Article País de afiliación: Austria