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Cell Wall Remodeling Enzymes Modulate Fungal Cell Wall Elasticity and Osmotic Stress Resistance

The fungal cell wall confers cell morphology and protection against environmental insults. For fungal pathogens, the cell wall is a key immunological modulator and an ideal therapeutic target. Yeast cell walls possess an inner matrix of interlinked β-glucan and chitin that is thought to provide tens...

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Autores principales: Ene, Iuliana V., Walker, Louise A., Schiavone, Marion, Lee, Keunsook K., Martin-Yken, Hélène, Dague, Etienne, Gow, Neil A. R., Munro, Carol A., Brown, Alistair J. P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Microbiology 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4551979/
https://www.ncbi.nlm.nih.gov/pubmed/26220968
http://dx.doi.org/10.1128/mBio.00986-15
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author Ene, Iuliana V.
Walker, Louise A.
Schiavone, Marion
Lee, Keunsook K.
Martin-Yken, Hélène
Dague, Etienne
Gow, Neil A. R.
Munro, Carol A.
Brown, Alistair J. P.
author_facet Ene, Iuliana V.
Walker, Louise A.
Schiavone, Marion
Lee, Keunsook K.
Martin-Yken, Hélène
Dague, Etienne
Gow, Neil A. R.
Munro, Carol A.
Brown, Alistair J. P.
author_sort Ene, Iuliana V.
collection PubMed
description The fungal cell wall confers cell morphology and protection against environmental insults. For fungal pathogens, the cell wall is a key immunological modulator and an ideal therapeutic target. Yeast cell walls possess an inner matrix of interlinked β-glucan and chitin that is thought to provide tensile strength and rigidity. Yeast cells remodel their walls over time in response to environmental change, a process controlled by evolutionarily conserved stress (Hog1) and cell integrity (Mkc1, Cek1) signaling pathways. These mitogen-activated protein kinase (MAPK) pathways modulate cell wall gene expression, leading to the construction of a new, modified cell wall. We show that the cell wall is not rigid but elastic, displaying rapid structural realignments that impact survival following osmotic shock. Lactate-grown Candida albicans cells are more resistant to hyperosmotic shock than glucose-grown cells. We show that this elevated resistance is not dependent on Hog1 or Mkc1 signaling and that most cell death occurs within 10 min of osmotic shock. Sudden decreases in cell volume drive rapid increases in cell wall thickness. The elevated stress resistance of lactate-grown cells correlates with reduced cell wall elasticity, reflected in slower changes in cell volume following hyperosmotic shock. The cell wall elasticity of lactate-grown cells is increased by a triple mutation that inactivates the Crh family of cell wall cross-linking enzymes, leading to increased sensitivity to hyperosmotic shock. Overexpressing Crh family members in glucose-grown cells reduces cell wall elasticity, providing partial protection against hyperosmotic shock. These changes correlate with structural realignment of the cell wall and with the ability of cells to withstand osmotic shock.
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spelling pubmed-45519792015-09-04 Cell Wall Remodeling Enzymes Modulate Fungal Cell Wall Elasticity and Osmotic Stress Resistance Ene, Iuliana V. Walker, Louise A. Schiavone, Marion Lee, Keunsook K. Martin-Yken, Hélène Dague, Etienne Gow, Neil A. R. Munro, Carol A. Brown, Alistair J. P. mBio Research Article The fungal cell wall confers cell morphology and protection against environmental insults. For fungal pathogens, the cell wall is a key immunological modulator and an ideal therapeutic target. Yeast cell walls possess an inner matrix of interlinked β-glucan and chitin that is thought to provide tensile strength and rigidity. Yeast cells remodel their walls over time in response to environmental change, a process controlled by evolutionarily conserved stress (Hog1) and cell integrity (Mkc1, Cek1) signaling pathways. These mitogen-activated protein kinase (MAPK) pathways modulate cell wall gene expression, leading to the construction of a new, modified cell wall. We show that the cell wall is not rigid but elastic, displaying rapid structural realignments that impact survival following osmotic shock. Lactate-grown Candida albicans cells are more resistant to hyperosmotic shock than glucose-grown cells. We show that this elevated resistance is not dependent on Hog1 or Mkc1 signaling and that most cell death occurs within 10 min of osmotic shock. Sudden decreases in cell volume drive rapid increases in cell wall thickness. The elevated stress resistance of lactate-grown cells correlates with reduced cell wall elasticity, reflected in slower changes in cell volume following hyperosmotic shock. The cell wall elasticity of lactate-grown cells is increased by a triple mutation that inactivates the Crh family of cell wall cross-linking enzymes, leading to increased sensitivity to hyperosmotic shock. Overexpressing Crh family members in glucose-grown cells reduces cell wall elasticity, providing partial protection against hyperosmotic shock. These changes correlate with structural realignment of the cell wall and with the ability of cells to withstand osmotic shock. American Society of Microbiology 2015-07-28 /pmc/articles/PMC4551979/ /pubmed/26220968 http://dx.doi.org/10.1128/mBio.00986-15 Text en Copyright © 2015 Ene et al. http://creativecommons.org/licenses/by-nc-sa/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-Noncommercial-ShareAlike 3.0 Unported license (http://creativecommons.org/licenses/by-nc-sa/3.0/) , which permits unrestricted noncommercial use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Ene, Iuliana V.
Walker, Louise A.
Schiavone, Marion
Lee, Keunsook K.
Martin-Yken, Hélène
Dague, Etienne
Gow, Neil A. R.
Munro, Carol A.
Brown, Alistair J. P.
Cell Wall Remodeling Enzymes Modulate Fungal Cell Wall Elasticity and Osmotic Stress Resistance
title Cell Wall Remodeling Enzymes Modulate Fungal Cell Wall Elasticity and Osmotic Stress Resistance
title_full Cell Wall Remodeling Enzymes Modulate Fungal Cell Wall Elasticity and Osmotic Stress Resistance
title_fullStr Cell Wall Remodeling Enzymes Modulate Fungal Cell Wall Elasticity and Osmotic Stress Resistance
title_full_unstemmed Cell Wall Remodeling Enzymes Modulate Fungal Cell Wall Elasticity and Osmotic Stress Resistance
title_short Cell Wall Remodeling Enzymes Modulate Fungal Cell Wall Elasticity and Osmotic Stress Resistance
title_sort cell wall remodeling enzymes modulate fungal cell wall elasticity and osmotic stress resistance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4551979/
https://www.ncbi.nlm.nih.gov/pubmed/26220968
http://dx.doi.org/10.1128/mBio.00986-15
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