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The Immune Protein Calprotectin Impacts Clostridioides difficile Metabolism through Zinc Limitation

The intestines house a diverse microbiota that must compete for nutrients to survive, but the specific limiting nutrients that control pathogen colonization are not clearly defined. Clostridioides difficile colonization typically requires prior disruption of the microbiota, suggesting that outcompet...

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Autores principales: Lopez, Christopher A., Beavers, William N., Weiss, Andy, Knippel, Reece J., Zackular, Joseph P., Chazin, Walter, Skaar, Eric P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6867894/
https://www.ncbi.nlm.nih.gov/pubmed/31744916
http://dx.doi.org/10.1128/mBio.02289-19
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author Lopez, Christopher A.
Beavers, William N.
Weiss, Andy
Knippel, Reece J.
Zackular, Joseph P.
Chazin, Walter
Skaar, Eric P.
author_facet Lopez, Christopher A.
Beavers, William N.
Weiss, Andy
Knippel, Reece J.
Zackular, Joseph P.
Chazin, Walter
Skaar, Eric P.
author_sort Lopez, Christopher A.
collection PubMed
description The intestines house a diverse microbiota that must compete for nutrients to survive, but the specific limiting nutrients that control pathogen colonization are not clearly defined. Clostridioides difficile colonization typically requires prior disruption of the microbiota, suggesting that outcompeting commensals for resources is critical to establishing C. difficile infection (CDI). The immune protein calprotectin (CP) is released into the gut lumen during CDI to chelate zinc (Zn) and other essential nutrient metals. Yet, the impact of Zn limitation on C. difficile colonization is unknown. To define C. difficile responses to Zn limitation, we performed RNA sequencing on C. difficile exposed to CP. In medium containing CP, C. difficile upregulated genes involved in metal homeostasis and amino acid metabolism. To identify CP-responsive genes important during infection, we measured the abundance of select C. difficile transcripts in a mouse CDI model relative to expression in vitro. Gene transcripts involved in selenium (Se)-dependent proline fermentation increased during infection and in response to CP. Increased proline fermentation gene transcription was dependent on CP Zn binding and proline availability, yet proline fermentation was only enhanced when Se was supplemented. CP-deficient mice could not restrain C. difficile proline fermentation-dependent growth, suggesting that CP-mediated Zn sequestration along with limited Se restricts C. difficile proline fermentation. Overall, these results highlight how C. difficile colonization depends on the availability of multiple nutrients whose abundances are dynamically influenced by the host response.
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spelling pubmed-68678942019-12-03 The Immune Protein Calprotectin Impacts Clostridioides difficile Metabolism through Zinc Limitation Lopez, Christopher A. Beavers, William N. Weiss, Andy Knippel, Reece J. Zackular, Joseph P. Chazin, Walter Skaar, Eric P. mBio Research Article The intestines house a diverse microbiota that must compete for nutrients to survive, but the specific limiting nutrients that control pathogen colonization are not clearly defined. Clostridioides difficile colonization typically requires prior disruption of the microbiota, suggesting that outcompeting commensals for resources is critical to establishing C. difficile infection (CDI). The immune protein calprotectin (CP) is released into the gut lumen during CDI to chelate zinc (Zn) and other essential nutrient metals. Yet, the impact of Zn limitation on C. difficile colonization is unknown. To define C. difficile responses to Zn limitation, we performed RNA sequencing on C. difficile exposed to CP. In medium containing CP, C. difficile upregulated genes involved in metal homeostasis and amino acid metabolism. To identify CP-responsive genes important during infection, we measured the abundance of select C. difficile transcripts in a mouse CDI model relative to expression in vitro. Gene transcripts involved in selenium (Se)-dependent proline fermentation increased during infection and in response to CP. Increased proline fermentation gene transcription was dependent on CP Zn binding and proline availability, yet proline fermentation was only enhanced when Se was supplemented. CP-deficient mice could not restrain C. difficile proline fermentation-dependent growth, suggesting that CP-mediated Zn sequestration along with limited Se restricts C. difficile proline fermentation. Overall, these results highlight how C. difficile colonization depends on the availability of multiple nutrients whose abundances are dynamically influenced by the host response. American Society for Microbiology 2019-11-19 /pmc/articles/PMC6867894/ /pubmed/31744916 http://dx.doi.org/10.1128/mBio.02289-19 Text en Copyright © 2019 Lopez et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Lopez, Christopher A.
Beavers, William N.
Weiss, Andy
Knippel, Reece J.
Zackular, Joseph P.
Chazin, Walter
Skaar, Eric P.
The Immune Protein Calprotectin Impacts Clostridioides difficile Metabolism through Zinc Limitation
title The Immune Protein Calprotectin Impacts Clostridioides difficile Metabolism through Zinc Limitation
title_full The Immune Protein Calprotectin Impacts Clostridioides difficile Metabolism through Zinc Limitation
title_fullStr The Immune Protein Calprotectin Impacts Clostridioides difficile Metabolism through Zinc Limitation
title_full_unstemmed The Immune Protein Calprotectin Impacts Clostridioides difficile Metabolism through Zinc Limitation
title_short The Immune Protein Calprotectin Impacts Clostridioides difficile Metabolism through Zinc Limitation
title_sort immune protein calprotectin impacts clostridioides difficile metabolism through zinc limitation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6867894/
https://www.ncbi.nlm.nih.gov/pubmed/31744916
http://dx.doi.org/10.1128/mBio.02289-19
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