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Insulin resistance per se drives early and reversible dysbiosis-mediated gut barrier impairment and bactericidal dysfunction

OBJECTIVE: A common feature of metabolic diseases is their association with chronic low-grade inflammation. While enhanced gut permeability and systemic bacterial endotoxin translocation have been suggested as key players of this metaflammation, the mechanistic bases underlying these features upon t...

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Autores principales: Gueddouri, Dalale, Caüzac, Michèle, Fauveau, Véronique, Benhamed, Fadila, Charifi, Wafa, Beaudoin, Lucie, Rouland, Matthieu, Sicherre, Florian, Lehuen, Agnès, Postic, Catherine, Boudry, Gaëlle, Burnol, Anne-Françoise, Guilmeau, Sandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8814824/
https://www.ncbi.nlm.nih.gov/pubmed/35007789
http://dx.doi.org/10.1016/j.molmet.2022.101438
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author Gueddouri, Dalale
Caüzac, Michèle
Fauveau, Véronique
Benhamed, Fadila
Charifi, Wafa
Beaudoin, Lucie
Rouland, Matthieu
Sicherre, Florian
Lehuen, Agnès
Postic, Catherine
Boudry, Gaëlle
Burnol, Anne-Françoise
Guilmeau, Sandra
author_facet Gueddouri, Dalale
Caüzac, Michèle
Fauveau, Véronique
Benhamed, Fadila
Charifi, Wafa
Beaudoin, Lucie
Rouland, Matthieu
Sicherre, Florian
Lehuen, Agnès
Postic, Catherine
Boudry, Gaëlle
Burnol, Anne-Françoise
Guilmeau, Sandra
author_sort Gueddouri, Dalale
collection PubMed
description OBJECTIVE: A common feature of metabolic diseases is their association with chronic low-grade inflammation. While enhanced gut permeability and systemic bacterial endotoxin translocation have been suggested as key players of this metaflammation, the mechanistic bases underlying these features upon the diabesity cascade remain partly understood. METHODS: Here, we show in mice that, independently of obesity, the induction of acute and global insulin resistance and associated hyperglycemia, upon treatment with an insulin receptor (IR) antagonist (S961), elicits gut hyperpermeability without triggering systemic inflammatory response. RESULTS: Of note, S961-treated diabetic mice display major defects of gut barrier epithelial functions, such as increased epithelial paracellular permeability and impaired cell-cell junction integrity. We also observed in these mice the early onset of a severe gut dysbiosis, as characterized by the bloom of pro-inflammatory Proteobacteria, and the later collapse of Paneth cells antimicrobial defense. Interestingly, S961 treatment discontinuation is sufficient to promptly restore both the gut microbial balance and the intestinal barrier integrity. Moreover, fecal transplant approaches further confirm that S961-mediated dybiosis contributes at least partly to the disruption of the gut selective epithelial permeability upon diabetic states. CONCLUSIONS: Together, our results highlight that insulin signaling is an indispensable gatekeeper of intestinal barrier integrity, acting as a safeguard against microbial imbalance and acute infections by enteropathogens.
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spelling pubmed-88148242022-02-08 Insulin resistance per se drives early and reversible dysbiosis-mediated gut barrier impairment and bactericidal dysfunction Gueddouri, Dalale Caüzac, Michèle Fauveau, Véronique Benhamed, Fadila Charifi, Wafa Beaudoin, Lucie Rouland, Matthieu Sicherre, Florian Lehuen, Agnès Postic, Catherine Boudry, Gaëlle Burnol, Anne-Françoise Guilmeau, Sandra Mol Metab Original Article OBJECTIVE: A common feature of metabolic diseases is their association with chronic low-grade inflammation. While enhanced gut permeability and systemic bacterial endotoxin translocation have been suggested as key players of this metaflammation, the mechanistic bases underlying these features upon the diabesity cascade remain partly understood. METHODS: Here, we show in mice that, independently of obesity, the induction of acute and global insulin resistance and associated hyperglycemia, upon treatment with an insulin receptor (IR) antagonist (S961), elicits gut hyperpermeability without triggering systemic inflammatory response. RESULTS: Of note, S961-treated diabetic mice display major defects of gut barrier epithelial functions, such as increased epithelial paracellular permeability and impaired cell-cell junction integrity. We also observed in these mice the early onset of a severe gut dysbiosis, as characterized by the bloom of pro-inflammatory Proteobacteria, and the later collapse of Paneth cells antimicrobial defense. Interestingly, S961 treatment discontinuation is sufficient to promptly restore both the gut microbial balance and the intestinal barrier integrity. Moreover, fecal transplant approaches further confirm that S961-mediated dybiosis contributes at least partly to the disruption of the gut selective epithelial permeability upon diabetic states. CONCLUSIONS: Together, our results highlight that insulin signaling is an indispensable gatekeeper of intestinal barrier integrity, acting as a safeguard against microbial imbalance and acute infections by enteropathogens. Elsevier 2022-01-08 /pmc/articles/PMC8814824/ /pubmed/35007789 http://dx.doi.org/10.1016/j.molmet.2022.101438 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Gueddouri, Dalale
Caüzac, Michèle
Fauveau, Véronique
Benhamed, Fadila
Charifi, Wafa
Beaudoin, Lucie
Rouland, Matthieu
Sicherre, Florian
Lehuen, Agnès
Postic, Catherine
Boudry, Gaëlle
Burnol, Anne-Françoise
Guilmeau, Sandra
Insulin resistance per se drives early and reversible dysbiosis-mediated gut barrier impairment and bactericidal dysfunction
title Insulin resistance per se drives early and reversible dysbiosis-mediated gut barrier impairment and bactericidal dysfunction
title_full Insulin resistance per se drives early and reversible dysbiosis-mediated gut barrier impairment and bactericidal dysfunction
title_fullStr Insulin resistance per se drives early and reversible dysbiosis-mediated gut barrier impairment and bactericidal dysfunction
title_full_unstemmed Insulin resistance per se drives early and reversible dysbiosis-mediated gut barrier impairment and bactericidal dysfunction
title_short Insulin resistance per se drives early and reversible dysbiosis-mediated gut barrier impairment and bactericidal dysfunction
title_sort insulin resistance per se drives early and reversible dysbiosis-mediated gut barrier impairment and bactericidal dysfunction
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8814824/
https://www.ncbi.nlm.nih.gov/pubmed/35007789
http://dx.doi.org/10.1016/j.molmet.2022.101438
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