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Clostridium butyricum MIYAIRI 588 Modifies Bacterial Composition under Antibiotic-Induced Dysbiosis for the Activation of Interactions via Lipid Metabolism between the Gut Microbiome and the Host

The gut microbiome is closely related to gut metabolic functions, and the gut microbiome and host metabolic functions affect each other. Clostridium butyricum MIYAIRI 588 (CBM 588) upregulates protectin D1 production in host colon tissue following G protein-coupled receptor (GPR) 120 activation to p...

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Autores principales: Ariyoshi, Tadashi, Hagihara, Mao, Tomono, Susumu, Eguchi, Shuhei, Minemura, Ayaka, Miura, Daiki, Oka, Kentaro, Takahashi, Motomichi, Yamagishi, Yuka, Mikamo, Hiroshige
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8391242/
https://www.ncbi.nlm.nih.gov/pubmed/34440269
http://dx.doi.org/10.3390/biomedicines9081065
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author Ariyoshi, Tadashi
Hagihara, Mao
Tomono, Susumu
Eguchi, Shuhei
Minemura, Ayaka
Miura, Daiki
Oka, Kentaro
Takahashi, Motomichi
Yamagishi, Yuka
Mikamo, Hiroshige
author_facet Ariyoshi, Tadashi
Hagihara, Mao
Tomono, Susumu
Eguchi, Shuhei
Minemura, Ayaka
Miura, Daiki
Oka, Kentaro
Takahashi, Motomichi
Yamagishi, Yuka
Mikamo, Hiroshige
author_sort Ariyoshi, Tadashi
collection PubMed
description The gut microbiome is closely related to gut metabolic functions, and the gut microbiome and host metabolic functions affect each other. Clostridium butyricum MIYAIRI 588 (CBM 588) upregulates protectin D1 production in host colon tissue following G protein-coupled receptor (GPR) 120 activation to protect gut epithelial cells under antibiotic-induced dysbiosis. However, how CBM 588 enhances polyunsaturated fatty acid (PUFA) metabolites remains unclear. Therefore, we focused on the metabolic function alterations of the gut microbiome after CBM 588 and protectin D1 administration to reveal the interaction between the host and gut microbiome through lipid metabolism during antibiotic-induced dysbiosis. Consequently, CBM 588 modified gut microbiome and increased the butyric acid and oleic acid content. These lipid metabolic modifications induced GPR activation, which is a trigger of ERK 1/2 signaling and directed differentiation of downstream immune cells in the host colon tissue. Moreover, endogenous protectin D1 modified the gut microbiome, similar to CBM 588. This is the first study to report that CBM 588 influences the interrelationship between colon tissue and the gut microbiome through lipid metabolism. These findings provide insights into the mechanisms of prevention and recovery from inflammation and the improvement of host metabolism by CBM 588.
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spelling pubmed-83912422021-08-28 Clostridium butyricum MIYAIRI 588 Modifies Bacterial Composition under Antibiotic-Induced Dysbiosis for the Activation of Interactions via Lipid Metabolism between the Gut Microbiome and the Host Ariyoshi, Tadashi Hagihara, Mao Tomono, Susumu Eguchi, Shuhei Minemura, Ayaka Miura, Daiki Oka, Kentaro Takahashi, Motomichi Yamagishi, Yuka Mikamo, Hiroshige Biomedicines Article The gut microbiome is closely related to gut metabolic functions, and the gut microbiome and host metabolic functions affect each other. Clostridium butyricum MIYAIRI 588 (CBM 588) upregulates protectin D1 production in host colon tissue following G protein-coupled receptor (GPR) 120 activation to protect gut epithelial cells under antibiotic-induced dysbiosis. However, how CBM 588 enhances polyunsaturated fatty acid (PUFA) metabolites remains unclear. Therefore, we focused on the metabolic function alterations of the gut microbiome after CBM 588 and protectin D1 administration to reveal the interaction between the host and gut microbiome through lipid metabolism during antibiotic-induced dysbiosis. Consequently, CBM 588 modified gut microbiome and increased the butyric acid and oleic acid content. These lipid metabolic modifications induced GPR activation, which is a trigger of ERK 1/2 signaling and directed differentiation of downstream immune cells in the host colon tissue. Moreover, endogenous protectin D1 modified the gut microbiome, similar to CBM 588. This is the first study to report that CBM 588 influences the interrelationship between colon tissue and the gut microbiome through lipid metabolism. These findings provide insights into the mechanisms of prevention and recovery from inflammation and the improvement of host metabolism by CBM 588. MDPI 2021-08-22 /pmc/articles/PMC8391242/ /pubmed/34440269 http://dx.doi.org/10.3390/biomedicines9081065 Text en © 2021 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
Ariyoshi, Tadashi
Hagihara, Mao
Tomono, Susumu
Eguchi, Shuhei
Minemura, Ayaka
Miura, Daiki
Oka, Kentaro
Takahashi, Motomichi
Yamagishi, Yuka
Mikamo, Hiroshige
Clostridium butyricum MIYAIRI 588 Modifies Bacterial Composition under Antibiotic-Induced Dysbiosis for the Activation of Interactions via Lipid Metabolism between the Gut Microbiome and the Host
title Clostridium butyricum MIYAIRI 588 Modifies Bacterial Composition under Antibiotic-Induced Dysbiosis for the Activation of Interactions via Lipid Metabolism between the Gut Microbiome and the Host
title_full Clostridium butyricum MIYAIRI 588 Modifies Bacterial Composition under Antibiotic-Induced Dysbiosis for the Activation of Interactions via Lipid Metabolism between the Gut Microbiome and the Host
title_fullStr Clostridium butyricum MIYAIRI 588 Modifies Bacterial Composition under Antibiotic-Induced Dysbiosis for the Activation of Interactions via Lipid Metabolism between the Gut Microbiome and the Host
title_full_unstemmed Clostridium butyricum MIYAIRI 588 Modifies Bacterial Composition under Antibiotic-Induced Dysbiosis for the Activation of Interactions via Lipid Metabolism between the Gut Microbiome and the Host
title_short Clostridium butyricum MIYAIRI 588 Modifies Bacterial Composition under Antibiotic-Induced Dysbiosis for the Activation of Interactions via Lipid Metabolism between the Gut Microbiome and the Host
title_sort clostridium butyricum miyairi 588 modifies bacterial composition under antibiotic-induced dysbiosis for the activation of interactions via lipid metabolism between the gut microbiome and the host
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8391242/
https://www.ncbi.nlm.nih.gov/pubmed/34440269
http://dx.doi.org/10.3390/biomedicines9081065
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