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Novel gold(III)-dithiocarbamate complex targeting bacterial thioredoxin reductase: antimicrobial activity, synergy, toxicity, and mechanistic insights

INTRODUCTION: Antimicrobial resistance is a pressing global concern that has led to the search for new antibacterial agents with novel targets or non-traditional approaches. Recently, organogold compounds have emerged as a promising class of antibacterial agents. In this study, we present and charac...

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Autores principales: Ratia, Carlos, Ballén, Victoria, Gabasa, Yaiza, Soengas, Raquel G., Velasco-de Andrés, María, Iglesias, María José, Cheng, Qing, Lozano, Francisco, Arnér, Elias S. J., López-Ortiz, Fernando, Soto, Sara M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10272563/
https://www.ncbi.nlm.nih.gov/pubmed/37333656
http://dx.doi.org/10.3389/fmicb.2023.1198473
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author Ratia, Carlos
Ballén, Victoria
Gabasa, Yaiza
Soengas, Raquel G.
Velasco-de Andrés, María
Iglesias, María José
Cheng, Qing
Lozano, Francisco
Arnér, Elias S. J.
López-Ortiz, Fernando
Soto, Sara M.
author_facet Ratia, Carlos
Ballén, Victoria
Gabasa, Yaiza
Soengas, Raquel G.
Velasco-de Andrés, María
Iglesias, María José
Cheng, Qing
Lozano, Francisco
Arnér, Elias S. J.
López-Ortiz, Fernando
Soto, Sara M.
author_sort Ratia, Carlos
collection PubMed
description INTRODUCTION: Antimicrobial resistance is a pressing global concern that has led to the search for new antibacterial agents with novel targets or non-traditional approaches. Recently, organogold compounds have emerged as a promising class of antibacterial agents. In this study, we present and characterize a (C^S)-cyclometallated Au(III) dithiocarbamate complex as a potential drug candidate. METHODS AND RESULTS: The Au(III) complex was found to be stable in the presence of effective biological reductants, and showed potent antibacterial and antibiofilm activity against a wide range of multidrug-resistant strains, particularly gram-positive strains, and gram-negative strains when used in combination with a permeabilizing antibiotic. No resistant mutants were detected after exposing bacterial cultures to strong selective pressure, indicating that the complex may have a low propensity for resistance development. Mechanistic studies indicate that the Au(III) complex exerts its antibacterial activity through a multimodal mechanism of action. Ultrastructural membrane damage and rapid bacterial uptake suggest direct interactions with the bacterial membrane, while transcriptomic analysis identified altered pathways related to energy metabolism and membrane stability including enzymes of the TCA cycle and fatty acid biosynthesis. Enzymatic studies further revealed a strong reversible inhibition of the bacterial thioredoxin reductase. Importantly, the Au(III) complex demonstrated low cytotoxicity at therapeutic concentrations in mammalian cell lines, and showed no acute in vivo toxicity in mice at the doses tested, with no signs of organ toxicity. DISCUSSION: Overall, these findings highlight the potential of the Au(III)-dithiocarbamate scaffold as a basis for developing novel antimicrobial agents, given its potent antibacterial activity, synergy, redox stability, inability to produce resistant mutants, low toxicity to mammalian cells both in vitro and in vivo, and non-conventional mechanism of action.
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spelling pubmed-102725632023-06-17 Novel gold(III)-dithiocarbamate complex targeting bacterial thioredoxin reductase: antimicrobial activity, synergy, toxicity, and mechanistic insights Ratia, Carlos Ballén, Victoria Gabasa, Yaiza Soengas, Raquel G. Velasco-de Andrés, María Iglesias, María José Cheng, Qing Lozano, Francisco Arnér, Elias S. J. López-Ortiz, Fernando Soto, Sara M. Front Microbiol Microbiology INTRODUCTION: Antimicrobial resistance is a pressing global concern that has led to the search for new antibacterial agents with novel targets or non-traditional approaches. Recently, organogold compounds have emerged as a promising class of antibacterial agents. In this study, we present and characterize a (C^S)-cyclometallated Au(III) dithiocarbamate complex as a potential drug candidate. METHODS AND RESULTS: The Au(III) complex was found to be stable in the presence of effective biological reductants, and showed potent antibacterial and antibiofilm activity against a wide range of multidrug-resistant strains, particularly gram-positive strains, and gram-negative strains when used in combination with a permeabilizing antibiotic. No resistant mutants were detected after exposing bacterial cultures to strong selective pressure, indicating that the complex may have a low propensity for resistance development. Mechanistic studies indicate that the Au(III) complex exerts its antibacterial activity through a multimodal mechanism of action. Ultrastructural membrane damage and rapid bacterial uptake suggest direct interactions with the bacterial membrane, while transcriptomic analysis identified altered pathways related to energy metabolism and membrane stability including enzymes of the TCA cycle and fatty acid biosynthesis. Enzymatic studies further revealed a strong reversible inhibition of the bacterial thioredoxin reductase. Importantly, the Au(III) complex demonstrated low cytotoxicity at therapeutic concentrations in mammalian cell lines, and showed no acute in vivo toxicity in mice at the doses tested, with no signs of organ toxicity. DISCUSSION: Overall, these findings highlight the potential of the Au(III)-dithiocarbamate scaffold as a basis for developing novel antimicrobial agents, given its potent antibacterial activity, synergy, redox stability, inability to produce resistant mutants, low toxicity to mammalian cells both in vitro and in vivo, and non-conventional mechanism of action. Frontiers Media S.A. 2023-06-02 /pmc/articles/PMC10272563/ /pubmed/37333656 http://dx.doi.org/10.3389/fmicb.2023.1198473 Text en Copyright © 2023 Ratia, Ballén, Gabasa, Soengas, Velasco-de Andrés, Iglesias, Cheng, Lozano, Arnér, López-Ortiz and Soto. 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
Ratia, Carlos
Ballén, Victoria
Gabasa, Yaiza
Soengas, Raquel G.
Velasco-de Andrés, María
Iglesias, María José
Cheng, Qing
Lozano, Francisco
Arnér, Elias S. J.
López-Ortiz, Fernando
Soto, Sara M.
Novel gold(III)-dithiocarbamate complex targeting bacterial thioredoxin reductase: antimicrobial activity, synergy, toxicity, and mechanistic insights
title Novel gold(III)-dithiocarbamate complex targeting bacterial thioredoxin reductase: antimicrobial activity, synergy, toxicity, and mechanistic insights
title_full Novel gold(III)-dithiocarbamate complex targeting bacterial thioredoxin reductase: antimicrobial activity, synergy, toxicity, and mechanistic insights
title_fullStr Novel gold(III)-dithiocarbamate complex targeting bacterial thioredoxin reductase: antimicrobial activity, synergy, toxicity, and mechanistic insights
title_full_unstemmed Novel gold(III)-dithiocarbamate complex targeting bacterial thioredoxin reductase: antimicrobial activity, synergy, toxicity, and mechanistic insights
title_short Novel gold(III)-dithiocarbamate complex targeting bacterial thioredoxin reductase: antimicrobial activity, synergy, toxicity, and mechanistic insights
title_sort novel gold(iii)-dithiocarbamate complex targeting bacterial thioredoxin reductase: antimicrobial activity, synergy, toxicity, and mechanistic insights
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10272563/
https://www.ncbi.nlm.nih.gov/pubmed/37333656
http://dx.doi.org/10.3389/fmicb.2023.1198473
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