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Benzylic Dehydroxylation of Echinocandin Antifungal Drugs Restores Efficacy against Resistance Conferred by Mutated Glucan Synthase

[Image: see text] Each year, infections caused by fungal pathogens claim the lives of about 1.6 million people and affect the health of over a billion people worldwide. Among the most recently developed antifungal drugs are the echinocandins, which noncompetitively inhibit β-glucan synthase, a membr...

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Autores principales: Logviniuk, Dana, Jaber, Qais Z., Dobrovetsky, Roman, Kozer, Noga, Ksiezopolska, Ewa, Gabaldón, Toni, Carmeli, Shmuel, Fridman, Micha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8991007/
https://www.ncbi.nlm.nih.gov/pubmed/35347986
http://dx.doi.org/10.1021/jacs.2c00269
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author Logviniuk, Dana
Jaber, Qais Z.
Dobrovetsky, Roman
Kozer, Noga
Ksiezopolska, Ewa
Gabaldón, Toni
Carmeli, Shmuel
Fridman, Micha
author_facet Logviniuk, Dana
Jaber, Qais Z.
Dobrovetsky, Roman
Kozer, Noga
Ksiezopolska, Ewa
Gabaldón, Toni
Carmeli, Shmuel
Fridman, Micha
author_sort Logviniuk, Dana
collection PubMed
description [Image: see text] Each year, infections caused by fungal pathogens claim the lives of about 1.6 million people and affect the health of over a billion people worldwide. Among the most recently developed antifungal drugs are the echinocandins, which noncompetitively inhibit β-glucan synthase, a membrane-bound protein complex that catalyzes the formation of the main polysaccharide component of the fungal cell wall. Resistance to echinocandins is conferred by mutations in FKS genes, which encode the catalytic subunit of the β-glucan synthase complex. Here, we report that selective removal of the benzylic alcohol of the nonproteinogenic amino acid 3S,4S-dihydroxy-l-homotyrosine of the echinocandins anidulafungin and rezafungin, restored their efficacy against a large panel of echinocandin-resistant Candida strains. The dehydroxylated compounds did not significantly affect the viability of human-derived cell culture lines. An analysis of the efficacy of the dehydroxylated echinocandins against resistant Candida strains, which contain mutations in the FKS1 and/or FKS2 genes of the parental strains, identified amino acids of the Fks proteins that are likely to reside in proximity to the l-homotyrosine residue of the bound drug. This study describes the first example of a chemical modification strategy to restore the efficacy of echinocandin drugs, which have a critical place in the arsenal of antifungal drugs, against resistant fungal pathogens.
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spelling pubmed-89910072022-04-08 Benzylic Dehydroxylation of Echinocandin Antifungal Drugs Restores Efficacy against Resistance Conferred by Mutated Glucan Synthase Logviniuk, Dana Jaber, Qais Z. Dobrovetsky, Roman Kozer, Noga Ksiezopolska, Ewa Gabaldón, Toni Carmeli, Shmuel Fridman, Micha J Am Chem Soc [Image: see text] Each year, infections caused by fungal pathogens claim the lives of about 1.6 million people and affect the health of over a billion people worldwide. Among the most recently developed antifungal drugs are the echinocandins, which noncompetitively inhibit β-glucan synthase, a membrane-bound protein complex that catalyzes the formation of the main polysaccharide component of the fungal cell wall. Resistance to echinocandins is conferred by mutations in FKS genes, which encode the catalytic subunit of the β-glucan synthase complex. Here, we report that selective removal of the benzylic alcohol of the nonproteinogenic amino acid 3S,4S-dihydroxy-l-homotyrosine of the echinocandins anidulafungin and rezafungin, restored their efficacy against a large panel of echinocandin-resistant Candida strains. The dehydroxylated compounds did not significantly affect the viability of human-derived cell culture lines. An analysis of the efficacy of the dehydroxylated echinocandins against resistant Candida strains, which contain mutations in the FKS1 and/or FKS2 genes of the parental strains, identified amino acids of the Fks proteins that are likely to reside in proximity to the l-homotyrosine residue of the bound drug. This study describes the first example of a chemical modification strategy to restore the efficacy of echinocandin drugs, which have a critical place in the arsenal of antifungal drugs, against resistant fungal pathogens. American Chemical Society 2022-03-29 2022-04-06 /pmc/articles/PMC8991007/ /pubmed/35347986 http://dx.doi.org/10.1021/jacs.2c00269 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Logviniuk, Dana
Jaber, Qais Z.
Dobrovetsky, Roman
Kozer, Noga
Ksiezopolska, Ewa
Gabaldón, Toni
Carmeli, Shmuel
Fridman, Micha
Benzylic Dehydroxylation of Echinocandin Antifungal Drugs Restores Efficacy against Resistance Conferred by Mutated Glucan Synthase
title Benzylic Dehydroxylation of Echinocandin Antifungal Drugs Restores Efficacy against Resistance Conferred by Mutated Glucan Synthase
title_full Benzylic Dehydroxylation of Echinocandin Antifungal Drugs Restores Efficacy against Resistance Conferred by Mutated Glucan Synthase
title_fullStr Benzylic Dehydroxylation of Echinocandin Antifungal Drugs Restores Efficacy against Resistance Conferred by Mutated Glucan Synthase
title_full_unstemmed Benzylic Dehydroxylation of Echinocandin Antifungal Drugs Restores Efficacy against Resistance Conferred by Mutated Glucan Synthase
title_short Benzylic Dehydroxylation of Echinocandin Antifungal Drugs Restores Efficacy against Resistance Conferred by Mutated Glucan Synthase
title_sort benzylic dehydroxylation of echinocandin antifungal drugs restores efficacy against resistance conferred by mutated glucan synthase
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8991007/
https://www.ncbi.nlm.nih.gov/pubmed/35347986
http://dx.doi.org/10.1021/jacs.2c00269
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