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Iron Sequestration in Microbiota Biofilms As A Novel Strategy for Treating Inflammatory Bowel Disease

Significant alterations of intestinal microbiota and anemia are hallmarks of inflammatory bowel disease (IBD). It is widely accepted that iron is a key nutrient for pathogenic bacteria, but little is known about its impact on microbiota associated with IBD. We used a model device to grow human mucos...

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Autores principales: Motta, Jean-Paul, Allain, Thibault, Green-Harrison, Luke E, Groves, Ryan A, Feener, Troy, Ramay, Hena, Beck, Paul L, Lewis, Ian A, Wallace, John L, Buret, Andre G
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5995063/
https://www.ncbi.nlm.nih.gov/pubmed/29788224
http://dx.doi.org/10.1093/ibd/izy116
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author Motta, Jean-Paul
Allain, Thibault
Green-Harrison, Luke E
Groves, Ryan A
Feener, Troy
Ramay, Hena
Beck, Paul L
Lewis, Ian A
Wallace, John L
Buret, Andre G
author_facet Motta, Jean-Paul
Allain, Thibault
Green-Harrison, Luke E
Groves, Ryan A
Feener, Troy
Ramay, Hena
Beck, Paul L
Lewis, Ian A
Wallace, John L
Buret, Andre G
author_sort Motta, Jean-Paul
collection PubMed
description Significant alterations of intestinal microbiota and anemia are hallmarks of inflammatory bowel disease (IBD). It is widely accepted that iron is a key nutrient for pathogenic bacteria, but little is known about its impact on microbiota associated with IBD. We used a model device to grow human mucosa-associated microbiota in its physiological anaerobic biofilm phenotype. Compared to microbiota from healthy donors, microbiota from IBD patients generate biofilms ex vivo that were larger in size and cell numbers, contained higher intracellular iron concentrations, and exhibited heightened virulence in a model of human intestinal epithelia in vitro and in the nematode Caenorhabditis elegans. We also describe an unexpected iron-scavenging property for an experimental hydrogen sulfide-releasing derivative of mesalamine. The findings demonstrate that this new drug reduces the virulence of IBD microbiota biofilms through a direct reduction of microbial iron intake and without affecting bacteria survival or species composition within the microbiota. Metabolomic analyses indicate that this drug reduces the intake of purine nucleosides (guanosine), increases the secretion of metabolite markers of purine catabolism (urate and hypoxanthine), and reduces the secretion of uracil (a pyrimidine nucleobase) in complex multispecies human biofilms. These findings demonstrate a new pathogenic mechanism for dysbiotic microbiota in IBD and characterize a novel mode of action for a class of mesalamine derivatives. Together, these observations pave the way towards a new therapeutic strategy for treatment of patients with IBD.
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spelling pubmed-59950632019-05-17 Iron Sequestration in Microbiota Biofilms As A Novel Strategy for Treating Inflammatory Bowel Disease Motta, Jean-Paul Allain, Thibault Green-Harrison, Luke E Groves, Ryan A Feener, Troy Ramay, Hena Beck, Paul L Lewis, Ian A Wallace, John L Buret, Andre G Inflamm Bowel Dis Original Basic Science Articles Significant alterations of intestinal microbiota and anemia are hallmarks of inflammatory bowel disease (IBD). It is widely accepted that iron is a key nutrient for pathogenic bacteria, but little is known about its impact on microbiota associated with IBD. We used a model device to grow human mucosa-associated microbiota in its physiological anaerobic biofilm phenotype. Compared to microbiota from healthy donors, microbiota from IBD patients generate biofilms ex vivo that were larger in size and cell numbers, contained higher intracellular iron concentrations, and exhibited heightened virulence in a model of human intestinal epithelia in vitro and in the nematode Caenorhabditis elegans. We also describe an unexpected iron-scavenging property for an experimental hydrogen sulfide-releasing derivative of mesalamine. The findings demonstrate that this new drug reduces the virulence of IBD microbiota biofilms through a direct reduction of microbial iron intake and without affecting bacteria survival or species composition within the microbiota. Metabolomic analyses indicate that this drug reduces the intake of purine nucleosides (guanosine), increases the secretion of metabolite markers of purine catabolism (urate and hypoxanthine), and reduces the secretion of uracil (a pyrimidine nucleobase) in complex multispecies human biofilms. These findings demonstrate a new pathogenic mechanism for dysbiotic microbiota in IBD and characterize a novel mode of action for a class of mesalamine derivatives. Together, these observations pave the way towards a new therapeutic strategy for treatment of patients with IBD. Oxford University Press 2018-07 2018-05-17 /pmc/articles/PMC5995063/ /pubmed/29788224 http://dx.doi.org/10.1093/ibd/izy116 Text en © 2018 Crohn’s & Colitis Foundation. Published by Oxford University Press. All rights reserved. For permissions, please e-mail: journals.permissions@oup.com. https://academic.oup.com/journals/pages/about_us/legal/notices This article is published and distributed under the terms of the Oxford University Press, Standard Journals Publication Model (https://academic.oup.com/journals/pages/about_us/legal/notices)
spellingShingle Original Basic Science Articles
Motta, Jean-Paul
Allain, Thibault
Green-Harrison, Luke E
Groves, Ryan A
Feener, Troy
Ramay, Hena
Beck, Paul L
Lewis, Ian A
Wallace, John L
Buret, Andre G
Iron Sequestration in Microbiota Biofilms As A Novel Strategy for Treating Inflammatory Bowel Disease
title Iron Sequestration in Microbiota Biofilms As A Novel Strategy for Treating Inflammatory Bowel Disease
title_full Iron Sequestration in Microbiota Biofilms As A Novel Strategy for Treating Inflammatory Bowel Disease
title_fullStr Iron Sequestration in Microbiota Biofilms As A Novel Strategy for Treating Inflammatory Bowel Disease
title_full_unstemmed Iron Sequestration in Microbiota Biofilms As A Novel Strategy for Treating Inflammatory Bowel Disease
title_short Iron Sequestration in Microbiota Biofilms As A Novel Strategy for Treating Inflammatory Bowel Disease
title_sort iron sequestration in microbiota biofilms as a novel strategy for treating inflammatory bowel disease
topic Original Basic Science Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5995063/
https://www.ncbi.nlm.nih.gov/pubmed/29788224
http://dx.doi.org/10.1093/ibd/izy116
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