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Mitomycin C potentiates metronidazole activity in resistant Trichomonas vaginalis through suppression of thioredoxin reductase

  • Chang Gung Memorial Hospital
  • Chang Gung University of Science and Technology
  • Chang Gung University
  • National Cheng Kung University

Research output: Contribution to journalJournal Article peer-review

Abstract

Metronidazole (MTZ) remains the first-line therapy for trichomoniasis; however, increasing resistance in Trichomonas vaginalis threatens treatment efficacy. Because iron availability enhances MTZ sensitivity, we investigated whether MTZ-induced parasite death involves ferroptosis-related mechanisms and explored alternative pathways contributing to drug resistance. Exposure of metronidazole-sensitive and -resistant isolates to ferroptosis inducers reduced parasite viability, yet neither ferroptosis inhibition nor iron chelation restored survival, and lipid peroxidation was not detected. These findings indicate that MTZ-associated cytotoxicity does not proceed via canonical ferroptotic pathways in T. vaginalis. Instead, resistant parasites exhibited elevated expression of thioredoxin-associated transcripts, consistent with enhanced redox defense capacity. Functional suppression of thioredoxin reductase (TrxR) activity by mitomycin C (MMC) significantly enhanced MTZ-mediated killing and produced a synergistic antiparasitic effect in resistant isolates. Although selective TrxR inhibition alone was insufficient to fully reproduce this phenotype, these findings implicate thioredoxin-dependent redox regulation as a contributor to MTZ susceptibility. Combination treatment was accompanied by selective metabolic reprogramming, including upregulation of pentose phosphate pathway genes linked to NADPH generation. Collectively, our results demonstrate that MTZ induces a non-ferroptotic form of cell death and identify thioredoxin-dependent redox buffering as a resistance-associated vulnerability. Targeting redox homeostasis through rational combination therapy may represent a mechanistically guided strategy to overcome metronidazole resistance in trichomoniasis.

Original languageEnglish
Article number100661
Pages (from-to)100661
JournalInternational Journal for Parasitology: Drugs and Drug Resistance
Volume31
Early online date18 07 2026
DOIs
StatePublished - 08 2026

Bibliographical note

Copyright © 2026 The Authors. Published by Elsevier Ltd.. All rights reserved.

Keywords

  • Ferroptosis
  • Metronidazole resistance
  • Mitomycin C
  • Synergic treatment
  • Thioredoxin reductase
  • Trichomonas vaginalis

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