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Targeting Methionine Synthase in a Fungal Pathogen Causes a Metabolic Imbalance That Impacts Cell Energetics, Growth, and Virulence

There is an urgent need to develop novel antifungals to tackle the threat fungal pathogens pose to human health. Here, we have performed a comprehensive characterization and validation of the promising target methionine synthase (MetH). We show that in Aspergillus fumigatus the absence of this enzym...

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Autores principales: Scott, Jennifer, Sueiro-Olivares, Monica, Thornton, Benjamin P., Owens, Rebecca A., Muhamadali, Howbeer, Fortune-Grant, Rachael, Thomson, Darren, Thomas, Riba, Hollywood, Katherine, Doyle, Sean, Goodacre, Royston, Tabernero, Lydia, Bignell, Elaine, Amich, Jorge
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7554668/
https://www.ncbi.nlm.nih.gov/pubmed/33051366
http://dx.doi.org/10.1128/mBio.01985-20
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author Scott, Jennifer
Sueiro-Olivares, Monica
Thornton, Benjamin P.
Owens, Rebecca A.
Muhamadali, Howbeer
Fortune-Grant, Rachael
Thomson, Darren
Thomas, Riba
Hollywood, Katherine
Doyle, Sean
Goodacre, Royston
Tabernero, Lydia
Bignell, Elaine
Amich, Jorge
author_facet Scott, Jennifer
Sueiro-Olivares, Monica
Thornton, Benjamin P.
Owens, Rebecca A.
Muhamadali, Howbeer
Fortune-Grant, Rachael
Thomson, Darren
Thomas, Riba
Hollywood, Katherine
Doyle, Sean
Goodacre, Royston
Tabernero, Lydia
Bignell, Elaine
Amich, Jorge
author_sort Scott, Jennifer
collection PubMed
description There is an urgent need to develop novel antifungals to tackle the threat fungal pathogens pose to human health. Here, we have performed a comprehensive characterization and validation of the promising target methionine synthase (MetH). We show that in Aspergillus fumigatus the absence of this enzymatic activity triggers a metabolic imbalance that causes a reduction in intracellular ATP, which prevents fungal growth even in the presence of methionine. Interestingly, growth can be recovered in the presence of certain metabolites, which shows that metH is a conditionally essential gene and consequently should be targeted in established infections for a more comprehensive validation. Accordingly, we have validated the use of the tetOFF genetic model in fungal research and improved its performance in vivo to achieve initial validation of targets in models of established infection. We show that repression of metH in growing hyphae halts growth in vitro, which translates into a beneficial effect when targeting established infections using this model in vivo. Finally, a structure-based virtual screening of methionine synthases reveals key differences between the human and fungal structures and unravels features in the fungal enzyme that can guide the design of novel specific inhibitors. Therefore, methionine synthase is a valuable target for the development of new antifungals.
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spelling pubmed-75546682020-10-19 Targeting Methionine Synthase in a Fungal Pathogen Causes a Metabolic Imbalance That Impacts Cell Energetics, Growth, and Virulence Scott, Jennifer Sueiro-Olivares, Monica Thornton, Benjamin P. Owens, Rebecca A. Muhamadali, Howbeer Fortune-Grant, Rachael Thomson, Darren Thomas, Riba Hollywood, Katherine Doyle, Sean Goodacre, Royston Tabernero, Lydia Bignell, Elaine Amich, Jorge mBio Research Article There is an urgent need to develop novel antifungals to tackle the threat fungal pathogens pose to human health. Here, we have performed a comprehensive characterization and validation of the promising target methionine synthase (MetH). We show that in Aspergillus fumigatus the absence of this enzymatic activity triggers a metabolic imbalance that causes a reduction in intracellular ATP, which prevents fungal growth even in the presence of methionine. Interestingly, growth can be recovered in the presence of certain metabolites, which shows that metH is a conditionally essential gene and consequently should be targeted in established infections for a more comprehensive validation. Accordingly, we have validated the use of the tetOFF genetic model in fungal research and improved its performance in vivo to achieve initial validation of targets in models of established infection. We show that repression of metH in growing hyphae halts growth in vitro, which translates into a beneficial effect when targeting established infections using this model in vivo. Finally, a structure-based virtual screening of methionine synthases reveals key differences between the human and fungal structures and unravels features in the fungal enzyme that can guide the design of novel specific inhibitors. Therefore, methionine synthase is a valuable target for the development of new antifungals. American Society for Microbiology 2020-10-13 /pmc/articles/PMC7554668/ /pubmed/33051366 http://dx.doi.org/10.1128/mBio.01985-20 Text en Copyright © 2020 Scott 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
Scott, Jennifer
Sueiro-Olivares, Monica
Thornton, Benjamin P.
Owens, Rebecca A.
Muhamadali, Howbeer
Fortune-Grant, Rachael
Thomson, Darren
Thomas, Riba
Hollywood, Katherine
Doyle, Sean
Goodacre, Royston
Tabernero, Lydia
Bignell, Elaine
Amich, Jorge
Targeting Methionine Synthase in a Fungal Pathogen Causes a Metabolic Imbalance That Impacts Cell Energetics, Growth, and Virulence
title Targeting Methionine Synthase in a Fungal Pathogen Causes a Metabolic Imbalance That Impacts Cell Energetics, Growth, and Virulence
title_full Targeting Methionine Synthase in a Fungal Pathogen Causes a Metabolic Imbalance That Impacts Cell Energetics, Growth, and Virulence
title_fullStr Targeting Methionine Synthase in a Fungal Pathogen Causes a Metabolic Imbalance That Impacts Cell Energetics, Growth, and Virulence
title_full_unstemmed Targeting Methionine Synthase in a Fungal Pathogen Causes a Metabolic Imbalance That Impacts Cell Energetics, Growth, and Virulence
title_short Targeting Methionine Synthase in a Fungal Pathogen Causes a Metabolic Imbalance That Impacts Cell Energetics, Growth, and Virulence
title_sort targeting methionine synthase in a fungal pathogen causes a metabolic imbalance that impacts cell energetics, growth, and virulence
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7554668/
https://www.ncbi.nlm.nih.gov/pubmed/33051366
http://dx.doi.org/10.1128/mBio.01985-20
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