Antileishmanial activity of gold(I) compounds containing triphenylphosphine ligands against Leishmania amazonensis: impacts on mitochondrial bioenergetics and trypanothione reductase activity

Abstract Leishmaniasis poses a significant public health challenge, highlighting the urgent need for safer and more effective therapies. Here, we investigated the antileishmanial activity and mechanism of action of gold(I)-triphenylphosphine complexes against Leishmania amazonensis . AuPPh 3 Cl and AuPPh 3 MTZ showed potent activity against promastigote and axenic amastigotes, with low micromolar EC 50 and favorable selectivity toward mammalian cells. Both compounds reduced infection rate and parasite burden in infected macrophages. Mechanistically, the complexes targeted mitochondrial function, resulting in increased oxygen consumption associated with dissipation of the mitochondrial membrane potential, without affecting respiratory coupling. These findings were accompanied by increased mitochondrial superoxide production, indicating a pro-oxidant effect. AuPPh 3 Cl induced higher hydrogen peroxide levels than AuPPh 3 MTZ , suggesting ligand-dependent differences in redox modulation. In addition, treated parasites displayed elevated NADPH levels, consistent with the activation of compensatory antioxidant responses. Both compounds inhibited trypanothione reductase activity in parasite extracts and with the purified enzyme. Notably, AuPPh 3 Cl showed greater selectivity toward the parasite enzyme over human glutathione reductase. Overall, these findings support a multitarget mechanism involving mitochondrial dysfunction and disruption of the trypanothione-dependent redox system, leading to oxidative imbalance and parasite death. Gold(I)-triphenylphosphine complexes represent promising candidates for the development of novel antileishmanial agents.

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Publication Details

Journal
BioMetals
Published
2026-09-18
DOI
https://doi.org/10.1007/s10534-026-00891-x
Primary Topic
Research on Leishmaniasis Studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Antileishmanial activity of gold(I) compounds containing triphenylphosphine ligands against Leishmania amazonensis: impacts on mitochondrial bioenergetics and trypanothione reductase activity

Camilla Abbehausen, Annarita Fiorillo, Fernanda Ramos Gadelha, Marcus Sávio Araújo Garcia et al.
BioMetals
Research on Leishmaniasis Studies
article

Antileishmanial activity of gold(I) compounds containing triphenylphosphine ligands against Leishmania amazonensis: impacts on mitochondrial bioenergetics and trypanothione reductase activity

Camilla Abbehausen, Annarita Fiorillo, Fernanda Ramos Gadelha, Marcus Sávio Araújo Garcia, Danilo C. Miguel, Andrea Ilari, J C Silva, Cécile Exertier, Vitor K. S. Bertolini
article en

Abstract

Abstract Leishmaniasis poses a significant public health challenge, highlighting the urgent need for safer and more effective therapies. Here, we investigated the antileishmanial activity and mechanism of action of gold(I)-triphenylphosphine complexes against Leishmania amazonensis . AuPPh 3 Cl and AuPPh 3 MTZ showed potent activity against promastigote and axenic amastigotes, with low micromolar EC 50 and favorable selectivity toward mammalian cells. Both compounds reduced infection rate and parasite burden in infected macrophages. Mechanistically, the complexes targeted mitochondrial function, resulting in increased oxygen consumption associated with dissipation of the mitochondrial membrane potential, without affecting respiratory coupling. These findings were accompanied by increased mitochondrial superoxide production, indicating a pro-oxidant effect. AuPPh 3 Cl induced higher hydrogen peroxide levels than AuPPh 3 MTZ , suggesting ligand-dependent differences in redox modulation. In addition, treated parasites displayed elevated NADPH levels, consistent with the activation of compensatory antioxidant responses. Both compounds inhibited trypanothione reductase activity in parasite extracts and with the purified enzyme. Notably, AuPPh 3 Cl showed greater selectivity toward the parasite enzyme over human glutathione reductase. Overall, these findings support a multitarget mechanism involving mitochondrial dysfunction and disruption of the trypanothione-dependent redox system, leading to oxidative imbalance and parasite death. Gold(I)-triphenylphosphine complexes represent promising candidates for the development of novel antileishmanial agents.

BioMetals
Universidade Estadual de Campinas (UNICAMP) (BR), Institute of Molecular Biology and Pathology (IT), Sapienza University of Rome (IT)
Fundação de Amparo à Pesquisa do Estado de São Paulo, Conselho Nacional de Desenvolvimento Científico e Tecnológico, NextGenerationEU
Good health and well-being
Openalex Percentile: Top 9%
Research on Leishmaniasis Studies
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