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Mycobacterium tuberculosis requires glyoxylate shunt and reverse methylcitrate cycle for lactate and pyruvate metabolism

Bacterial nutrition is an essential aspect of host–pathogen interaction. For the intracellular pathogen Mycobacterium tuberculosis (Mtb), the causative agent of tuberculosis in humans, fatty acids derived from lipid droplets are considered the major carbon source. However, many other soluble nutrien...

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Autores principales: Serafini, Agnese, Tan, Lendl, Horswell, Stuart, Howell, Steven, Greenwood, Daniel J., Hunt, Deborah M., Phan, Minh‐Duy, Schembri, Mark, Monteleone, Mercedes, Montague, Christine R., Britton, Warwick, Garza‐Garcia, Acely, Snijders, Ambrosius P., VanderVen, Brian, Gutierrez, Maximiliano G., West, Nicholas P., de Carvalho, Luiz Pedro S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6851703/
https://www.ncbi.nlm.nih.gov/pubmed/31389636
http://dx.doi.org/10.1111/mmi.14362
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author Serafini, Agnese
Tan, Lendl
Horswell, Stuart
Howell, Steven
Greenwood, Daniel J.
Hunt, Deborah M.
Phan, Minh‐Duy
Schembri, Mark
Monteleone, Mercedes
Montague, Christine R.
Britton, Warwick
Garza‐Garcia, Acely
Snijders, Ambrosius P.
VanderVen, Brian
Gutierrez, Maximiliano G.
West, Nicholas P.
de Carvalho, Luiz Pedro S.
author_facet Serafini, Agnese
Tan, Lendl
Horswell, Stuart
Howell, Steven
Greenwood, Daniel J.
Hunt, Deborah M.
Phan, Minh‐Duy
Schembri, Mark
Monteleone, Mercedes
Montague, Christine R.
Britton, Warwick
Garza‐Garcia, Acely
Snijders, Ambrosius P.
VanderVen, Brian
Gutierrez, Maximiliano G.
West, Nicholas P.
de Carvalho, Luiz Pedro S.
author_sort Serafini, Agnese
collection PubMed
description Bacterial nutrition is an essential aspect of host–pathogen interaction. For the intracellular pathogen Mycobacterium tuberculosis (Mtb), the causative agent of tuberculosis in humans, fatty acids derived from lipid droplets are considered the major carbon source. However, many other soluble nutrients are available inside host cells and may be used as alternative carbon sources. Lactate and pyruvate are abundant in human cells and fluids, particularly during inflammation. In this work, we study Mtb metabolism of lactate and pyruvate combining classic microbial physiology with a ‘multi‐omics’ approach consisting of transposon‐directed insertion site sequencing (TraDIS), RNA‐seq transcriptomics, proteomics and stable isotopic labelling coupled with mass spectrometry‐based metabolomics. We discovered that Mtb is well adapted to use both lactate and pyruvate and that their metabolism requires gluconeogenesis, valine metabolism, the Krebs cycle, the GABA shunt, the glyoxylate shunt and the methylcitrate cycle. The last two pathways are traditionally associated with fatty acid metabolism and, unexpectedly, we found that in Mtb the methylcitrate cycle operates in reverse, to allow optimal metabolism of lactate and pyruvate. Our findings reveal a novel function for the methylcitrate cycle as a direct route for the biosynthesis of propionyl‐CoA, the essential precursor for the biosynthesis of the odd‐chain fatty acids.
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spelling pubmed-68517032019-11-18 Mycobacterium tuberculosis requires glyoxylate shunt and reverse methylcitrate cycle for lactate and pyruvate metabolism Serafini, Agnese Tan, Lendl Horswell, Stuart Howell, Steven Greenwood, Daniel J. Hunt, Deborah M. Phan, Minh‐Duy Schembri, Mark Monteleone, Mercedes Montague, Christine R. Britton, Warwick Garza‐Garcia, Acely Snijders, Ambrosius P. VanderVen, Brian Gutierrez, Maximiliano G. West, Nicholas P. de Carvalho, Luiz Pedro S. Mol Microbiol Research Articles Bacterial nutrition is an essential aspect of host–pathogen interaction. For the intracellular pathogen Mycobacterium tuberculosis (Mtb), the causative agent of tuberculosis in humans, fatty acids derived from lipid droplets are considered the major carbon source. However, many other soluble nutrients are available inside host cells and may be used as alternative carbon sources. Lactate and pyruvate are abundant in human cells and fluids, particularly during inflammation. In this work, we study Mtb metabolism of lactate and pyruvate combining classic microbial physiology with a ‘multi‐omics’ approach consisting of transposon‐directed insertion site sequencing (TraDIS), RNA‐seq transcriptomics, proteomics and stable isotopic labelling coupled with mass spectrometry‐based metabolomics. We discovered that Mtb is well adapted to use both lactate and pyruvate and that their metabolism requires gluconeogenesis, valine metabolism, the Krebs cycle, the GABA shunt, the glyoxylate shunt and the methylcitrate cycle. The last two pathways are traditionally associated with fatty acid metabolism and, unexpectedly, we found that in Mtb the methylcitrate cycle operates in reverse, to allow optimal metabolism of lactate and pyruvate. Our findings reveal a novel function for the methylcitrate cycle as a direct route for the biosynthesis of propionyl‐CoA, the essential precursor for the biosynthesis of the odd‐chain fatty acids. John Wiley and Sons Inc. 2019-08-23 2019-10 /pmc/articles/PMC6851703/ /pubmed/31389636 http://dx.doi.org/10.1111/mmi.14362 Text en © 2019 The Authors. Molecular Microbiology published by John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Serafini, Agnese
Tan, Lendl
Horswell, Stuart
Howell, Steven
Greenwood, Daniel J.
Hunt, Deborah M.
Phan, Minh‐Duy
Schembri, Mark
Monteleone, Mercedes
Montague, Christine R.
Britton, Warwick
Garza‐Garcia, Acely
Snijders, Ambrosius P.
VanderVen, Brian
Gutierrez, Maximiliano G.
West, Nicholas P.
de Carvalho, Luiz Pedro S.
Mycobacterium tuberculosis requires glyoxylate shunt and reverse methylcitrate cycle for lactate and pyruvate metabolism
title Mycobacterium tuberculosis requires glyoxylate shunt and reverse methylcitrate cycle for lactate and pyruvate metabolism
title_full Mycobacterium tuberculosis requires glyoxylate shunt and reverse methylcitrate cycle for lactate and pyruvate metabolism
title_fullStr Mycobacterium tuberculosis requires glyoxylate shunt and reverse methylcitrate cycle for lactate and pyruvate metabolism
title_full_unstemmed Mycobacterium tuberculosis requires glyoxylate shunt and reverse methylcitrate cycle for lactate and pyruvate metabolism
title_short Mycobacterium tuberculosis requires glyoxylate shunt and reverse methylcitrate cycle for lactate and pyruvate metabolism
title_sort mycobacterium tuberculosis requires glyoxylate shunt and reverse methylcitrate cycle for lactate and pyruvate metabolism
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6851703/
https://www.ncbi.nlm.nih.gov/pubmed/31389636
http://dx.doi.org/10.1111/mmi.14362
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