Cargando…

Eggerthella lenta DSM 2243 Alleviates Bile Acid Stress Response in Clostridium ramosum and Anaerostipes caccae by Transformation of Bile Acids

Bile acids are crucial for the uptake of dietary lipids and can shape the gut-microbiome composition. This latter function is associated with the toxicity of bile acids and can be modulated by bile acid modifying bacteria such as Eggerthella lenta, but the molecular details of the interaction of bac...

Descripción completa

Detalles Bibliográficos
Autores principales: Pedersen, Kristian Jensen, Haange, Sven-Bastiaan, Žížalová, Kateřina, Viehof, Alina, Clavel, Thomas, Leniček, Martin, Engelmann, Beatrice, Wick, Lukas Y., Schaap, Frank G., Jehmlich, Nico, Rolle-Kampczyk, Ulrike, von Bergen, Martin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9607062/
https://www.ncbi.nlm.nih.gov/pubmed/36296301
http://dx.doi.org/10.3390/microorganisms10102025
_version_ 1784818447595601920
author Pedersen, Kristian Jensen
Haange, Sven-Bastiaan
Žížalová, Kateřina
Viehof, Alina
Clavel, Thomas
Leniček, Martin
Engelmann, Beatrice
Wick, Lukas Y.
Schaap, Frank G.
Jehmlich, Nico
Rolle-Kampczyk, Ulrike
von Bergen, Martin
author_facet Pedersen, Kristian Jensen
Haange, Sven-Bastiaan
Žížalová, Kateřina
Viehof, Alina
Clavel, Thomas
Leniček, Martin
Engelmann, Beatrice
Wick, Lukas Y.
Schaap, Frank G.
Jehmlich, Nico
Rolle-Kampczyk, Ulrike
von Bergen, Martin
author_sort Pedersen, Kristian Jensen
collection PubMed
description Bile acids are crucial for the uptake of dietary lipids and can shape the gut-microbiome composition. This latter function is associated with the toxicity of bile acids and can be modulated by bile acid modifying bacteria such as Eggerthella lenta, but the molecular details of the interaction of bacteria depending on bile acid modifications are not well understood. In order to unravel the molecular response to bile acids and their metabolites, we cultivated eight strains from a human intestinal microbiome model alone and in co-culture with Eggerthella lenta in the presence of cholic acid (CA) and deoxycholic acid (DCA). We observed growth inhibition of particularly gram-positive strains such as Clostridium ramosum and the gram-variable Anaerostipes cacae by CA and DCA stress. C. ramosum was alleviated through co-culturing with Eggerthella lenta. We approached effects on the membrane by zeta potential and genotoxic and metabolic effects by (meta)proteomic and metabolomic analyses. Co-culturing with Eggerthella lenta decreased both CA and DCA by the formation of oxidized and epimerized bile acids. Eggerthella lenta also produces microbial bile salt conjugates in a co-cultured species-specific manner. This study highlights how the interaction with other bacteria can influence the functionality of bacteria.
format Online
Article
Text
id pubmed-9607062
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96070622022-10-28 Eggerthella lenta DSM 2243 Alleviates Bile Acid Stress Response in Clostridium ramosum and Anaerostipes caccae by Transformation of Bile Acids Pedersen, Kristian Jensen Haange, Sven-Bastiaan Žížalová, Kateřina Viehof, Alina Clavel, Thomas Leniček, Martin Engelmann, Beatrice Wick, Lukas Y. Schaap, Frank G. Jehmlich, Nico Rolle-Kampczyk, Ulrike von Bergen, Martin Microorganisms Article Bile acids are crucial for the uptake of dietary lipids and can shape the gut-microbiome composition. This latter function is associated with the toxicity of bile acids and can be modulated by bile acid modifying bacteria such as Eggerthella lenta, but the molecular details of the interaction of bacteria depending on bile acid modifications are not well understood. In order to unravel the molecular response to bile acids and their metabolites, we cultivated eight strains from a human intestinal microbiome model alone and in co-culture with Eggerthella lenta in the presence of cholic acid (CA) and deoxycholic acid (DCA). We observed growth inhibition of particularly gram-positive strains such as Clostridium ramosum and the gram-variable Anaerostipes cacae by CA and DCA stress. C. ramosum was alleviated through co-culturing with Eggerthella lenta. We approached effects on the membrane by zeta potential and genotoxic and metabolic effects by (meta)proteomic and metabolomic analyses. Co-culturing with Eggerthella lenta decreased both CA and DCA by the formation of oxidized and epimerized bile acids. Eggerthella lenta also produces microbial bile salt conjugates in a co-cultured species-specific manner. This study highlights how the interaction with other bacteria can influence the functionality of bacteria. MDPI 2022-10-13 /pmc/articles/PMC9607062/ /pubmed/36296301 http://dx.doi.org/10.3390/microorganisms10102025 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Pedersen, Kristian Jensen
Haange, Sven-Bastiaan
Žížalová, Kateřina
Viehof, Alina
Clavel, Thomas
Leniček, Martin
Engelmann, Beatrice
Wick, Lukas Y.
Schaap, Frank G.
Jehmlich, Nico
Rolle-Kampczyk, Ulrike
von Bergen, Martin
Eggerthella lenta DSM 2243 Alleviates Bile Acid Stress Response in Clostridium ramosum and Anaerostipes caccae by Transformation of Bile Acids
title Eggerthella lenta DSM 2243 Alleviates Bile Acid Stress Response in Clostridium ramosum and Anaerostipes caccae by Transformation of Bile Acids
title_full Eggerthella lenta DSM 2243 Alleviates Bile Acid Stress Response in Clostridium ramosum and Anaerostipes caccae by Transformation of Bile Acids
title_fullStr Eggerthella lenta DSM 2243 Alleviates Bile Acid Stress Response in Clostridium ramosum and Anaerostipes caccae by Transformation of Bile Acids
title_full_unstemmed Eggerthella lenta DSM 2243 Alleviates Bile Acid Stress Response in Clostridium ramosum and Anaerostipes caccae by Transformation of Bile Acids
title_short Eggerthella lenta DSM 2243 Alleviates Bile Acid Stress Response in Clostridium ramosum and Anaerostipes caccae by Transformation of Bile Acids
title_sort eggerthella lenta dsm 2243 alleviates bile acid stress response in clostridium ramosum and anaerostipes caccae by transformation of bile acids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9607062/
https://www.ncbi.nlm.nih.gov/pubmed/36296301
http://dx.doi.org/10.3390/microorganisms10102025
work_keys_str_mv AT pedersenkristianjensen eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT haangesvenbastiaan eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT zizalovakaterina eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT viehofalina eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT clavelthomas eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT lenicekmartin eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT engelmannbeatrice eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT wicklukasy eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT schaapfrankg eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT jehmlichnico eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT rollekampczykulrike eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids
AT vonbergenmartin eggerthellalentadsm2243alleviatesbileacidstressresponseinclostridiumramosumandanaerostipescaccaebytransformationofbileacids