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Free Radical Production Induced by Nitroimidazole Compounds Lead to Cell Death in Amastigotes. | LitMetric

AI Article Synopsis

  • Visceral leishmaniasis, caused by the trypanosomatid parasite, is treated with outdated drugs that often lead to resistance and side effects.
  • Drug repurposing is being explored to find new treatments, with promising results from nitroaromatic compounds like fexinidazole and pretomanid, which have shown effectiveness against leishmaniasis in various studies.
  • Recent tests using a high-throughput screening platform demonstrated that these nitroimidazoles are effective against parasite cells while causing minimal harm to human cell cultures, suggesting they may disrupt thiol metabolism rather than inhibit key enzymes directly.

Article Abstract

is the vector-borne trypanosomatid parasite causing visceral leishmaniasis in the Mediterranean basin. This neglected tropical disease is treated with a limited number of obsolete drugs that are not exempt from adverse effects and whose overuse has promoted the emergence of resistant pathogens. In the search for novel antitrypanosomatid molecules that help overcome these drawbacks, drug repurposing has emerged as a good strategy. Nitroaromatic compounds have been found in drug discovery campaigns as promising antileishmanial molecules. Fexinidazole (recently introduced for the treatment of stages 1 and 2 of African trypanosomiasis), and pretomanid, which share the nitroimidazole nitroaromatic structure, have provided antileishmanial activity in different studies. In this work, we have tested the in vitro efficacy of these two nitroimidazoles to validate our 384-well high-throughput screening (HTS) platform consisting of parasites emitting the near-infrared fluorescent protein (iRFP) as a biomarker of cell viability. These molecules showed good efficacy in both axenic and intramacrophage amastigotes and were poorly cytotoxic in RAW 264.7 and HepG2 cultures. Fexinidazole and pretomanid induced the production of ROS in axenic amastigotes but were not able to inhibit trypanothione reductase (TryR), thus suggesting that these compounds may target thiol metabolism through a different mechanism of action.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11396368PMC
http://dx.doi.org/10.3390/molecules29174041DOI Listing

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