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Helicobacter pylori Colonization Ameliorates Glucose Homeostasis in Mice through a PPAR γ-Dependent Mechanism

BACKGROUND: There is an inverse secular trend between the incidence of obesity and gastric colonization with Helicobacter pylori, a bacterium that can affect the secretion of gastric hormones that relate to energy homeostasis. H. pylori strains that carry the cag pathogenicity island (PAI) interact...

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Autores principales: Bassaganya-Riera, Josep, Dominguez-Bello, Maria Gloria, Kronsteiner, Barbara, Carbo, Adria, Lu, Pinyi, Viladomiu, Monica, Pedragosa, Mireia, Zhang, Xiaoying, Sobral, Bruno W., Mane, Shrinivasrao P., Mohapatra, Saroj K., Horne, William T., Guri, Amir J., Groeschl, Michael, Lopez-Velasco, Gabriela, Hontecillas, Raquel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3499487/
https://www.ncbi.nlm.nih.gov/pubmed/23166823
http://dx.doi.org/10.1371/journal.pone.0050069
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author Bassaganya-Riera, Josep
Dominguez-Bello, Maria Gloria
Kronsteiner, Barbara
Carbo, Adria
Lu, Pinyi
Viladomiu, Monica
Pedragosa, Mireia
Zhang, Xiaoying
Sobral, Bruno W.
Mane, Shrinivasrao P.
Mohapatra, Saroj K.
Horne, William T.
Guri, Amir J.
Groeschl, Michael
Lopez-Velasco, Gabriela
Hontecillas, Raquel
author_facet Bassaganya-Riera, Josep
Dominguez-Bello, Maria Gloria
Kronsteiner, Barbara
Carbo, Adria
Lu, Pinyi
Viladomiu, Monica
Pedragosa, Mireia
Zhang, Xiaoying
Sobral, Bruno W.
Mane, Shrinivasrao P.
Mohapatra, Saroj K.
Horne, William T.
Guri, Amir J.
Groeschl, Michael
Lopez-Velasco, Gabriela
Hontecillas, Raquel
author_sort Bassaganya-Riera, Josep
collection PubMed
description BACKGROUND: There is an inverse secular trend between the incidence of obesity and gastric colonization with Helicobacter pylori, a bacterium that can affect the secretion of gastric hormones that relate to energy homeostasis. H. pylori strains that carry the cag pathogenicity island (PAI) interact more intimately with gastric epithelial cells and trigger more extensive host responses than cag(−) strains. We hypothesized that gastric colonization with H. pylori strains differing in cag PAI status exert distinct effects on metabolic and inflammatory phenotypes. METHODOLOGY/PRINCIPAL FINDINGS: To test this hypothesis, we examined metabolic and inflammatory markers in db/db mice and mice with diet-induced obesity experimentally infected with isogenic forms of H. pylori strain 26695: the cag PAI wild-type and its cag PAI mutant strain 99–305. H. pylori colonization decreased fasting blood glucose levels, increased levels of leptin, improved glucose tolerance, and suppressed weight gain. A response found in both wild-type and mutant H. pylori strain-infected mice included decreased white adipose tissue macrophages (ATM) and increased adipose tissue regulatory T cells (Treg) cells. Gene expression analyses demonstrated upregulation of gastric PPAR γ-responsive genes (i.e., CD36 and FABP4) in H. pylori-infected mice. The loss of PPAR γ in immune and epithelial cells in mice impaired the ability of H. pylori to favorably modulate glucose homeostasis and ATM infiltration during high fat feeding. CONCLUSIONS/SIGNIFICANCE: Gastric infection with some commensal strains of H. pylori ameliorates glucose homeostasis in mice through a PPAR γ-dependent mechanism and modulates macrophage and Treg cell infiltration into the abdominal white adipose tissue.
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spelling pubmed-34994872012-11-19 Helicobacter pylori Colonization Ameliorates Glucose Homeostasis in Mice through a PPAR γ-Dependent Mechanism Bassaganya-Riera, Josep Dominguez-Bello, Maria Gloria Kronsteiner, Barbara Carbo, Adria Lu, Pinyi Viladomiu, Monica Pedragosa, Mireia Zhang, Xiaoying Sobral, Bruno W. Mane, Shrinivasrao P. Mohapatra, Saroj K. Horne, William T. Guri, Amir J. Groeschl, Michael Lopez-Velasco, Gabriela Hontecillas, Raquel PLoS One Research Article BACKGROUND: There is an inverse secular trend between the incidence of obesity and gastric colonization with Helicobacter pylori, a bacterium that can affect the secretion of gastric hormones that relate to energy homeostasis. H. pylori strains that carry the cag pathogenicity island (PAI) interact more intimately with gastric epithelial cells and trigger more extensive host responses than cag(−) strains. We hypothesized that gastric colonization with H. pylori strains differing in cag PAI status exert distinct effects on metabolic and inflammatory phenotypes. METHODOLOGY/PRINCIPAL FINDINGS: To test this hypothesis, we examined metabolic and inflammatory markers in db/db mice and mice with diet-induced obesity experimentally infected with isogenic forms of H. pylori strain 26695: the cag PAI wild-type and its cag PAI mutant strain 99–305. H. pylori colonization decreased fasting blood glucose levels, increased levels of leptin, improved glucose tolerance, and suppressed weight gain. A response found in both wild-type and mutant H. pylori strain-infected mice included decreased white adipose tissue macrophages (ATM) and increased adipose tissue regulatory T cells (Treg) cells. Gene expression analyses demonstrated upregulation of gastric PPAR γ-responsive genes (i.e., CD36 and FABP4) in H. pylori-infected mice. The loss of PPAR γ in immune and epithelial cells in mice impaired the ability of H. pylori to favorably modulate glucose homeostasis and ATM infiltration during high fat feeding. CONCLUSIONS/SIGNIFICANCE: Gastric infection with some commensal strains of H. pylori ameliorates glucose homeostasis in mice through a PPAR γ-dependent mechanism and modulates macrophage and Treg cell infiltration into the abdominal white adipose tissue. Public Library of Science 2012-11-15 /pmc/articles/PMC3499487/ /pubmed/23166823 http://dx.doi.org/10.1371/journal.pone.0050069 Text en © 2012 Bassaganya-Riera et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Bassaganya-Riera, Josep
Dominguez-Bello, Maria Gloria
Kronsteiner, Barbara
Carbo, Adria
Lu, Pinyi
Viladomiu, Monica
Pedragosa, Mireia
Zhang, Xiaoying
Sobral, Bruno W.
Mane, Shrinivasrao P.
Mohapatra, Saroj K.
Horne, William T.
Guri, Amir J.
Groeschl, Michael
Lopez-Velasco, Gabriela
Hontecillas, Raquel
Helicobacter pylori Colonization Ameliorates Glucose Homeostasis in Mice through a PPAR γ-Dependent Mechanism
title Helicobacter pylori Colonization Ameliorates Glucose Homeostasis in Mice through a PPAR γ-Dependent Mechanism
title_full Helicobacter pylori Colonization Ameliorates Glucose Homeostasis in Mice through a PPAR γ-Dependent Mechanism
title_fullStr Helicobacter pylori Colonization Ameliorates Glucose Homeostasis in Mice through a PPAR γ-Dependent Mechanism
title_full_unstemmed Helicobacter pylori Colonization Ameliorates Glucose Homeostasis in Mice through a PPAR γ-Dependent Mechanism
title_short Helicobacter pylori Colonization Ameliorates Glucose Homeostasis in Mice through a PPAR γ-Dependent Mechanism
title_sort helicobacter pylori colonization ameliorates glucose homeostasis in mice through a ppar γ-dependent mechanism
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3499487/
https://www.ncbi.nlm.nih.gov/pubmed/23166823
http://dx.doi.org/10.1371/journal.pone.0050069
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