Cargando…

A new metabolic trait in an acetogen: Mixed acid fermentation of fructose in a methylene‐tetrahydrofolate reductase mutant of Acetobacterium woodii

To inactivate the Wood–Ljungdahl pathway in the acetogenic model bacterium Acetobacterium woodii, the genes metVF encoding two of the subunits of the methylene‐tetrahydrofolate reductase were deleted. As expected, the mutant did not grow on C1 compounds and also not on lactate, ethanol or butanediol...

Descripción completa

Detalles Bibliográficos
Autores principales: Moon, Jimyung, Schubert, Anja, Poehlein, Anja, Daniel, Rolf, Müller, Volker
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10472528/
https://www.ncbi.nlm.nih.gov/pubmed/37150590
http://dx.doi.org/10.1111/1758-2229.13160
_version_ 1785100095814893568
author Moon, Jimyung
Schubert, Anja
Poehlein, Anja
Daniel, Rolf
Müller, Volker
author_facet Moon, Jimyung
Schubert, Anja
Poehlein, Anja
Daniel, Rolf
Müller, Volker
author_sort Moon, Jimyung
collection PubMed
description To inactivate the Wood–Ljungdahl pathway in the acetogenic model bacterium Acetobacterium woodii, the genes metVF encoding two of the subunits of the methylene‐tetrahydrofolate reductase were deleted. As expected, the mutant did not grow on C1 compounds and also not on lactate, ethanol or butanediol. In contrast to a mutant in which the first enzyme of the pathway (hydrogen‐dependent CO(2) reductase) had been genetically deleted, cells were able to grow on fructose, albeit with lower rates and yields than the wild‐type. Growth was restored by addition of an external electron sink, glycine betaine + CO(2) or caffeate. Resting cells pre‐grown on fructose plus an external electron acceptor fermented fructose to two acetate and four hydrogen, that is, performed hydrogenogenesis. Cells pre‐grown under fermentative conditions on fructose alone redirected carbon and electrons to form lactate, formate, ethanol as well as hydrogen. Apparently, growth on fructose alone induced enzymes for mixed acid fermentation (MAF). Transcriptome analyses revealed enzymes potentially involved in MAF and a quantitative model for MAF from fructose in A. woodii is presented.
format Online
Article
Text
id pubmed-10472528
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher John Wiley & Sons, Inc.
record_format MEDLINE/PubMed
spelling pubmed-104725282023-09-02 A new metabolic trait in an acetogen: Mixed acid fermentation of fructose in a methylene‐tetrahydrofolate reductase mutant of Acetobacterium woodii Moon, Jimyung Schubert, Anja Poehlein, Anja Daniel, Rolf Müller, Volker Environ Microbiol Rep Research Articles To inactivate the Wood–Ljungdahl pathway in the acetogenic model bacterium Acetobacterium woodii, the genes metVF encoding two of the subunits of the methylene‐tetrahydrofolate reductase were deleted. As expected, the mutant did not grow on C1 compounds and also not on lactate, ethanol or butanediol. In contrast to a mutant in which the first enzyme of the pathway (hydrogen‐dependent CO(2) reductase) had been genetically deleted, cells were able to grow on fructose, albeit with lower rates and yields than the wild‐type. Growth was restored by addition of an external electron sink, glycine betaine + CO(2) or caffeate. Resting cells pre‐grown on fructose plus an external electron acceptor fermented fructose to two acetate and four hydrogen, that is, performed hydrogenogenesis. Cells pre‐grown under fermentative conditions on fructose alone redirected carbon and electrons to form lactate, formate, ethanol as well as hydrogen. Apparently, growth on fructose alone induced enzymes for mixed acid fermentation (MAF). Transcriptome analyses revealed enzymes potentially involved in MAF and a quantitative model for MAF from fructose in A. woodii is presented. John Wiley & Sons, Inc. 2023-05-07 /pmc/articles/PMC10472528/ /pubmed/37150590 http://dx.doi.org/10.1111/1758-2229.13160 Text en © 2023 The Authors. Environmental Microbiology Reports published by Applied Microbiology International and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://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
Moon, Jimyung
Schubert, Anja
Poehlein, Anja
Daniel, Rolf
Müller, Volker
A new metabolic trait in an acetogen: Mixed acid fermentation of fructose in a methylene‐tetrahydrofolate reductase mutant of Acetobacterium woodii
title A new metabolic trait in an acetogen: Mixed acid fermentation of fructose in a methylene‐tetrahydrofolate reductase mutant of Acetobacterium woodii
title_full A new metabolic trait in an acetogen: Mixed acid fermentation of fructose in a methylene‐tetrahydrofolate reductase mutant of Acetobacterium woodii
title_fullStr A new metabolic trait in an acetogen: Mixed acid fermentation of fructose in a methylene‐tetrahydrofolate reductase mutant of Acetobacterium woodii
title_full_unstemmed A new metabolic trait in an acetogen: Mixed acid fermentation of fructose in a methylene‐tetrahydrofolate reductase mutant of Acetobacterium woodii
title_short A new metabolic trait in an acetogen: Mixed acid fermentation of fructose in a methylene‐tetrahydrofolate reductase mutant of Acetobacterium woodii
title_sort new metabolic trait in an acetogen: mixed acid fermentation of fructose in a methylene‐tetrahydrofolate reductase mutant of acetobacterium woodii
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10472528/
https://www.ncbi.nlm.nih.gov/pubmed/37150590
http://dx.doi.org/10.1111/1758-2229.13160
work_keys_str_mv AT moonjimyung anewmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii
AT schubertanja anewmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii
AT poehleinanja anewmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii
AT danielrolf anewmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii
AT mullervolker anewmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii
AT moonjimyung newmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii
AT schubertanja newmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii
AT poehleinanja newmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii
AT danielrolf newmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii
AT mullervolker newmetabolictraitinanacetogenmixedacidfermentationoffructoseinamethylenetetrahydrofolatereductasemutantofacetobacteriumwoodii