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May 17, 2026International Journal for Parasitology Drugs and Drug Resistance0 citationsOpen Access

Furoxan derivatives with antimalarial activity that disrupt P. falciparum endoplasmic reticulum calcium homeostasis

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LCLeandro da Costa ClementinoCentro Universitário de AraraquaraPBPaula J. BartlettRutgers, The State University of New JerseyGFGuilherme F.S. FernandesCentro Universitário de Araraquara

Key Points

  • This study aims to investigate the antimalarial properties of furoxan derivatives against Plasmodium falciparum.
  • Tested 24 furoxan derivatives on genetically modified P. falciparum expressing GCaMP3.
  • Measured cytosolic calcium concentration and effects on hemoglobin degradation.
  • Analyzed compounds’ activity using EC 50 values and Tanimoto’s score analysis.
  • Furoxan 4m demonstrated significant antimalarial activity with an EC 50 of 2.8 μM.
  • 4m selectively increased cytosolic calcium concentration, accessing the endoplasmic reticulum.
  • 4m did not inhibit falcipain-2 or hemoglobin degradation despite its antimalarial effects.

Abstract

Malaria, caused by Plasmodium spp. parasites, presents treatment challenges due to the emergence of resistant strains to frontline antimalarials. In this study, we explored activities of 24 furoxan derivatives, originally designed for leishmaniasis treatment, against intraerythrocytic Plasmodium falciparum parasites. The studies were carried out with genetically-modified P. falciparum expressing GCaMP3, a cytosolic calcium indicator, and maintained in human red blood cell culture. The most potent compound Furoxan (1,2,5-oxidiazole-2N-oxide) 4m exhibited significant antimalarial activity (EC 50 = 2.8 μM). By contrast, the benzofuroxan derivative compounds showed limited inhibition of parasite growth, with the most effective compound, 4r, achieving 40% inhibition at 10 μM. Compound 4m contains the N -acyl hydrazone moiety, known for inhibiting cysteine proteases, and shows low similarity with other antimalarials observed by Tanimoto’s score analysis. We assessed the ability of this compound to inhibit falcipains, the main cysteine proteases of P. falciparum , found in the parasite digestive vacuole and responsible for hemoglobin degradation. In contrast to the cysteine protease inhibitor E64 , 4m did not inhibit hemoglobin degradation. Additionally, 4m and the other derivatives showed no inhibition of falcipain-2 in vitro . Among the active compounds, we observed that only 4m selectively increased cytosolic calcium concentration (Ca 2+ c ) in intra-erythrocytic parasites. This Ca 2+ release occurred from the cyclopiazonic acid (CPA) sensitive endoplasmic reticulum compartment and not from the nigericin-sensitive acidic compartments, including the food vacuole. 4m can release NO; however, the ability of 4m to increase Ca 2+ c is not dependent on NO, as Ca 2+ release was not blocked by the NO scavenger CPTIO or mimicked by the NO donor diethylamine NONOate. These findings suggest that 4m warrants further exploration as a new scaffold for developing antimalarial drugs with distinct mechanisms of action compared to available antimalarials. • Furoxan compounds are more active than benzofuroxan against P. falciparum parasites, highlighting furoxan 4m (EC 50 = 2.8 μM) as the most potent. • 4m does not inhibit falcipain-2 in vitro or in the parasite food vacuole, but it does delay parasite egress. • 4m increased cytosolic calcium concentration targeting the endoplasmic reticulum in intraerythrocytic trophozoite-stage parasites.

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Cite This Study

Clementino et al. (2026) studied this question.

synapsesocial.com/papers/6a095b3f7880e6d24efe1060https://doi.org/10.1016/j.ijpddr.2026.100648
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