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Trehalose Recycling Promotes Energy-Efficient Biosynthesis of the Mycobacterial Cell Envelope

The mycomembrane layer of the mycobacterial cell envelope is a barrier to environmental, immune, and antibiotic insults. There is considerable evidence of mycomembrane plasticity during infection and in response to host-mimicking stresses. Since mycobacteria are resource and energy limited under the...

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Autores principales: Pohane, Amol Arunrao, Carr, Caleb R., Garhyan, Jaishree, Swarts, Benjamin M., Siegrist, M. Sloan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7845637/
https://www.ncbi.nlm.nih.gov/pubmed/33468692
http://dx.doi.org/10.1128/mBio.02801-20
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author Pohane, Amol Arunrao
Carr, Caleb R.
Garhyan, Jaishree
Swarts, Benjamin M.
Siegrist, M. Sloan
author_facet Pohane, Amol Arunrao
Carr, Caleb R.
Garhyan, Jaishree
Swarts, Benjamin M.
Siegrist, M. Sloan
author_sort Pohane, Amol Arunrao
collection PubMed
description The mycomembrane layer of the mycobacterial cell envelope is a barrier to environmental, immune, and antibiotic insults. There is considerable evidence of mycomembrane plasticity during infection and in response to host-mimicking stresses. Since mycobacteria are resource and energy limited under these conditions, it is likely that remodeling has distinct requirements from those of the well-characterized biosynthetic program that operates during unrestricted growth. Unexpectedly, we found that mycomembrane remodeling in nutrient-starved, nonreplicating mycobacteria includes synthesis in addition to turnover. Mycomembrane synthesis under these conditions occurs along the cell periphery, in contrast to the polar assembly of actively growing cells, and both liberates and relies on the nonmammalian disaccharide trehalose. In the absence of trehalose recycling, de novo trehalose synthesis fuels mycomembrane remodeling. However, mycobacteria experience ATP depletion, enhanced respiration, and redox stress, hallmarks of futile cycling and the collateral dysfunction elicited by some bactericidal antibiotics. Inefficient energy metabolism compromises the survival of trehalose recycling mutants in macrophages. Our data suggest that trehalose recycling alleviates the energetic burden of mycomembrane remodeling under stress. Cell envelope recycling pathways are emerging targets for sensitizing resource-limited bacterial pathogens to host and antibiotic pressure.
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spelling pubmed-78456372021-02-05 Trehalose Recycling Promotes Energy-Efficient Biosynthesis of the Mycobacterial Cell Envelope Pohane, Amol Arunrao Carr, Caleb R. Garhyan, Jaishree Swarts, Benjamin M. Siegrist, M. Sloan mBio Research Article The mycomembrane layer of the mycobacterial cell envelope is a barrier to environmental, immune, and antibiotic insults. There is considerable evidence of mycomembrane plasticity during infection and in response to host-mimicking stresses. Since mycobacteria are resource and energy limited under these conditions, it is likely that remodeling has distinct requirements from those of the well-characterized biosynthetic program that operates during unrestricted growth. Unexpectedly, we found that mycomembrane remodeling in nutrient-starved, nonreplicating mycobacteria includes synthesis in addition to turnover. Mycomembrane synthesis under these conditions occurs along the cell periphery, in contrast to the polar assembly of actively growing cells, and both liberates and relies on the nonmammalian disaccharide trehalose. In the absence of trehalose recycling, de novo trehalose synthesis fuels mycomembrane remodeling. However, mycobacteria experience ATP depletion, enhanced respiration, and redox stress, hallmarks of futile cycling and the collateral dysfunction elicited by some bactericidal antibiotics. Inefficient energy metabolism compromises the survival of trehalose recycling mutants in macrophages. Our data suggest that trehalose recycling alleviates the energetic burden of mycomembrane remodeling under stress. Cell envelope recycling pathways are emerging targets for sensitizing resource-limited bacterial pathogens to host and antibiotic pressure. American Society for Microbiology 2021-01-19 /pmc/articles/PMC7845637/ /pubmed/33468692 http://dx.doi.org/10.1128/mBio.02801-20 Text en Copyright © 2021 Pohane 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
Pohane, Amol Arunrao
Carr, Caleb R.
Garhyan, Jaishree
Swarts, Benjamin M.
Siegrist, M. Sloan
Trehalose Recycling Promotes Energy-Efficient Biosynthesis of the Mycobacterial Cell Envelope
title Trehalose Recycling Promotes Energy-Efficient Biosynthesis of the Mycobacterial Cell Envelope
title_full Trehalose Recycling Promotes Energy-Efficient Biosynthesis of the Mycobacterial Cell Envelope
title_fullStr Trehalose Recycling Promotes Energy-Efficient Biosynthesis of the Mycobacterial Cell Envelope
title_full_unstemmed Trehalose Recycling Promotes Energy-Efficient Biosynthesis of the Mycobacterial Cell Envelope
title_short Trehalose Recycling Promotes Energy-Efficient Biosynthesis of the Mycobacterial Cell Envelope
title_sort trehalose recycling promotes energy-efficient biosynthesis of the mycobacterial cell envelope
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7845637/
https://www.ncbi.nlm.nih.gov/pubmed/33468692
http://dx.doi.org/10.1128/mBio.02801-20
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