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A screen of drug-like molecules identifies chemically diverse electron transport chain inhibitors in apicomplexan parasites

Apicomplexans are widespread parasites of humans and other animals, and include the causative agents of malaria (Plasmodium species) and toxoplasmosis (Toxoplasma gondii). Existing anti-apicomplexan therapies are beset with issues around drug resistance and toxicity, and new treatment options are ne...

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Autores principales: Hayward, Jenni A., Makota, F. Victor, Cihalova, Daniela, Leonard, Rachel A., Rajendran, Esther, Zwahlen, Soraya M., Shuttleworth, Laura, Wiedemann, Ursula, Spry, Christina, Saliba, Kevin J., Maier, Alexander G., van Dooren, Giel G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10403144/
https://www.ncbi.nlm.nih.gov/pubmed/37471441
http://dx.doi.org/10.1371/journal.ppat.1011517
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author Hayward, Jenni A.
Makota, F. Victor
Cihalova, Daniela
Leonard, Rachel A.
Rajendran, Esther
Zwahlen, Soraya M.
Shuttleworth, Laura
Wiedemann, Ursula
Spry, Christina
Saliba, Kevin J.
Maier, Alexander G.
van Dooren, Giel G.
author_facet Hayward, Jenni A.
Makota, F. Victor
Cihalova, Daniela
Leonard, Rachel A.
Rajendran, Esther
Zwahlen, Soraya M.
Shuttleworth, Laura
Wiedemann, Ursula
Spry, Christina
Saliba, Kevin J.
Maier, Alexander G.
van Dooren, Giel G.
author_sort Hayward, Jenni A.
collection PubMed
description Apicomplexans are widespread parasites of humans and other animals, and include the causative agents of malaria (Plasmodium species) and toxoplasmosis (Toxoplasma gondii). Existing anti-apicomplexan therapies are beset with issues around drug resistance and toxicity, and new treatment options are needed. The mitochondrial electron transport chain (ETC) is one of the few processes that has been validated as a drug target in apicomplexans. To identify new inhibitors of the apicomplexan ETC, we developed a Seahorse XFe96 flux analyzer approach to screen the 400 compounds contained within the Medicines for Malaria Venture ‘Pathogen Box’ for ETC inhibition. We identified six chemically diverse, on-target inhibitors of the ETC in T. gondii, at least four of which also target the ETC of Plasmodium falciparum. Two of the identified compounds (MMV024937 and MMV688853) represent novel ETC inhibitor chemotypes. MMV688853 belongs to a compound class, the aminopyrazole carboxamides, that were shown previously to target a kinase with a key role in parasite invasion of host cells. Our data therefore reveal that MMV688853 has dual targets in apicomplexans. We further developed our approach to pinpoint the molecular targets of these inhibitors, demonstrating that all target Complex III of the ETC, with MMV688853 targeting the ubiquinone reduction (Q(i)) site of the complex. Most of the compounds we identified remain effective inhibitors of parasites that are resistant to Complex III inhibitors that are in clinical use or development, indicating that they could be used in treating drug resistant parasites. In sum, we have developed a versatile, scalable approach to screen for compounds that target the ETC in apicomplexan parasites, and used this to identify and characterize novel inhibitors.
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spelling pubmed-104031442023-08-05 A screen of drug-like molecules identifies chemically diverse electron transport chain inhibitors in apicomplexan parasites Hayward, Jenni A. Makota, F. Victor Cihalova, Daniela Leonard, Rachel A. Rajendran, Esther Zwahlen, Soraya M. Shuttleworth, Laura Wiedemann, Ursula Spry, Christina Saliba, Kevin J. Maier, Alexander G. van Dooren, Giel G. PLoS Pathog Research Article Apicomplexans are widespread parasites of humans and other animals, and include the causative agents of malaria (Plasmodium species) and toxoplasmosis (Toxoplasma gondii). Existing anti-apicomplexan therapies are beset with issues around drug resistance and toxicity, and new treatment options are needed. The mitochondrial electron transport chain (ETC) is one of the few processes that has been validated as a drug target in apicomplexans. To identify new inhibitors of the apicomplexan ETC, we developed a Seahorse XFe96 flux analyzer approach to screen the 400 compounds contained within the Medicines for Malaria Venture ‘Pathogen Box’ for ETC inhibition. We identified six chemically diverse, on-target inhibitors of the ETC in T. gondii, at least four of which also target the ETC of Plasmodium falciparum. Two of the identified compounds (MMV024937 and MMV688853) represent novel ETC inhibitor chemotypes. MMV688853 belongs to a compound class, the aminopyrazole carboxamides, that were shown previously to target a kinase with a key role in parasite invasion of host cells. Our data therefore reveal that MMV688853 has dual targets in apicomplexans. We further developed our approach to pinpoint the molecular targets of these inhibitors, demonstrating that all target Complex III of the ETC, with MMV688853 targeting the ubiquinone reduction (Q(i)) site of the complex. Most of the compounds we identified remain effective inhibitors of parasites that are resistant to Complex III inhibitors that are in clinical use or development, indicating that they could be used in treating drug resistant parasites. In sum, we have developed a versatile, scalable approach to screen for compounds that target the ETC in apicomplexan parasites, and used this to identify and characterize novel inhibitors. Public Library of Science 2023-07-20 /pmc/articles/PMC10403144/ /pubmed/37471441 http://dx.doi.org/10.1371/journal.ppat.1011517 Text en © 2023 Hayward et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Hayward, Jenni A.
Makota, F. Victor
Cihalova, Daniela
Leonard, Rachel A.
Rajendran, Esther
Zwahlen, Soraya M.
Shuttleworth, Laura
Wiedemann, Ursula
Spry, Christina
Saliba, Kevin J.
Maier, Alexander G.
van Dooren, Giel G.
A screen of drug-like molecules identifies chemically diverse electron transport chain inhibitors in apicomplexan parasites
title A screen of drug-like molecules identifies chemically diverse electron transport chain inhibitors in apicomplexan parasites
title_full A screen of drug-like molecules identifies chemically diverse electron transport chain inhibitors in apicomplexan parasites
title_fullStr A screen of drug-like molecules identifies chemically diverse electron transport chain inhibitors in apicomplexan parasites
title_full_unstemmed A screen of drug-like molecules identifies chemically diverse electron transport chain inhibitors in apicomplexan parasites
title_short A screen of drug-like molecules identifies chemically diverse electron transport chain inhibitors in apicomplexan parasites
title_sort screen of drug-like molecules identifies chemically diverse electron transport chain inhibitors in apicomplexan parasites
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10403144/
https://www.ncbi.nlm.nih.gov/pubmed/37471441
http://dx.doi.org/10.1371/journal.ppat.1011517
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