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Copper Acts Synergistically With Fluconazole in Candida glabrata by Compromising Drug Efflux, Sterol Metabolism, and Zinc Homeostasis

The synergistic combinations of drugs are promising strategies to boost the effectiveness of current antifungals and thus prevent the emergence of resistance. In this work, we show that copper and the antifungal fluconazole act synergistically against Candida glabrata, an opportunistic pathogenic ye...

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Autores principales: Gaspar-Cordeiro, Ana, Amaral, Catarina, Pobre, Vânia, Antunes, Wilson, Petronilho, Ana, Paixão, Paulo, Matos, António P., Pimentel, Catarina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9237516/
https://www.ncbi.nlm.nih.gov/pubmed/35774458
http://dx.doi.org/10.3389/fmicb.2022.920574
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author Gaspar-Cordeiro, Ana
Amaral, Catarina
Pobre, Vânia
Antunes, Wilson
Petronilho, Ana
Paixão, Paulo
Matos, António P.
Pimentel, Catarina
author_facet Gaspar-Cordeiro, Ana
Amaral, Catarina
Pobre, Vânia
Antunes, Wilson
Petronilho, Ana
Paixão, Paulo
Matos, António P.
Pimentel, Catarina
author_sort Gaspar-Cordeiro, Ana
collection PubMed
description The synergistic combinations of drugs are promising strategies to boost the effectiveness of current antifungals and thus prevent the emergence of resistance. In this work, we show that copper and the antifungal fluconazole act synergistically against Candida glabrata, an opportunistic pathogenic yeast intrinsically tolerant to fluconazole. Analyses of the transcriptomic profile of C. glabrata after the combination of copper and fluconazole showed that the expression of the multidrug transporter gene CDR1 was decreased, suggesting that fluconazole efflux could be affected. In agreement, we observed that copper inhibits the transactivation of Pdr1, the transcription regulator of multidrug transporters and leads to the intracellular accumulation of fluconazole. Copper also decreases the transcriptional induction of ergosterol biosynthesis (ERG) genes by fluconazole, which culminates in the accumulation of toxic sterols. Co-treatment of cells with copper and fluconazole should affect the function of proteins located in the plasma membrane, as several ultrastructural alterations, including irregular cell wall and plasma membrane and loss of cell wall integrity, were observed. Finally, we show that the combination of copper and fluconazole downregulates the expression of the gene encoding the zinc-responsive transcription regulator Zap1, which possibly, together with the membrane transporters malfunction, generates zinc depletion. Supplementation with zinc reverts the toxic effect of combining copper with fluconazole, underscoring the importance of this metal in the observed synergistic effect. Overall, this work, while unveiling the molecular basis that supports the use of copper to enhance the effectiveness of fluconazole, paves the way for the development of new metal-based antifungal strategies.
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spelling pubmed-92375162022-06-29 Copper Acts Synergistically With Fluconazole in Candida glabrata by Compromising Drug Efflux, Sterol Metabolism, and Zinc Homeostasis Gaspar-Cordeiro, Ana Amaral, Catarina Pobre, Vânia Antunes, Wilson Petronilho, Ana Paixão, Paulo Matos, António P. Pimentel, Catarina Front Microbiol Microbiology The synergistic combinations of drugs are promising strategies to boost the effectiveness of current antifungals and thus prevent the emergence of resistance. In this work, we show that copper and the antifungal fluconazole act synergistically against Candida glabrata, an opportunistic pathogenic yeast intrinsically tolerant to fluconazole. Analyses of the transcriptomic profile of C. glabrata after the combination of copper and fluconazole showed that the expression of the multidrug transporter gene CDR1 was decreased, suggesting that fluconazole efflux could be affected. In agreement, we observed that copper inhibits the transactivation of Pdr1, the transcription regulator of multidrug transporters and leads to the intracellular accumulation of fluconazole. Copper also decreases the transcriptional induction of ergosterol biosynthesis (ERG) genes by fluconazole, which culminates in the accumulation of toxic sterols. Co-treatment of cells with copper and fluconazole should affect the function of proteins located in the plasma membrane, as several ultrastructural alterations, including irregular cell wall and plasma membrane and loss of cell wall integrity, were observed. Finally, we show that the combination of copper and fluconazole downregulates the expression of the gene encoding the zinc-responsive transcription regulator Zap1, which possibly, together with the membrane transporters malfunction, generates zinc depletion. Supplementation with zinc reverts the toxic effect of combining copper with fluconazole, underscoring the importance of this metal in the observed synergistic effect. Overall, this work, while unveiling the molecular basis that supports the use of copper to enhance the effectiveness of fluconazole, paves the way for the development of new metal-based antifungal strategies. Frontiers Media S.A. 2022-06-14 /pmc/articles/PMC9237516/ /pubmed/35774458 http://dx.doi.org/10.3389/fmicb.2022.920574 Text en Copyright © 2022 Gaspar-Cordeiro, Amaral, Pobre, Antunes, Petronilho, Paixão, Matos and Pimentel. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Gaspar-Cordeiro, Ana
Amaral, Catarina
Pobre, Vânia
Antunes, Wilson
Petronilho, Ana
Paixão, Paulo
Matos, António P.
Pimentel, Catarina
Copper Acts Synergistically With Fluconazole in Candida glabrata by Compromising Drug Efflux, Sterol Metabolism, and Zinc Homeostasis
title Copper Acts Synergistically With Fluconazole in Candida glabrata by Compromising Drug Efflux, Sterol Metabolism, and Zinc Homeostasis
title_full Copper Acts Synergistically With Fluconazole in Candida glabrata by Compromising Drug Efflux, Sterol Metabolism, and Zinc Homeostasis
title_fullStr Copper Acts Synergistically With Fluconazole in Candida glabrata by Compromising Drug Efflux, Sterol Metabolism, and Zinc Homeostasis
title_full_unstemmed Copper Acts Synergistically With Fluconazole in Candida glabrata by Compromising Drug Efflux, Sterol Metabolism, and Zinc Homeostasis
title_short Copper Acts Synergistically With Fluconazole in Candida glabrata by Compromising Drug Efflux, Sterol Metabolism, and Zinc Homeostasis
title_sort copper acts synergistically with fluconazole in candida glabrata by compromising drug efflux, sterol metabolism, and zinc homeostasis
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9237516/
https://www.ncbi.nlm.nih.gov/pubmed/35774458
http://dx.doi.org/10.3389/fmicb.2022.920574
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