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Antitrypanosomal 8-Hydroxy-Naphthyridines Are Chelators of Divalent Transition Metals

The lack of information regarding the mechanisms of action (MoA) or specific molecular targets of phenotypically active compounds can prove a barrier to their development as chemotherapeutic agents. Here, we report the results of our orthogonal genetic, molecular, and biochemical studies to determin...

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Autores principales: Wall, Richard J., Moniz, Sonia, Thomas, Michael G., Norval, Suzanne, Ko, Eun-Jung, Marco, Maria, Miles, Timothy J., Gilbert, Ian H., Horn, David, Fairlamb, Alan H., Wyllie, Susan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6105827/
https://www.ncbi.nlm.nih.gov/pubmed/29844044
http://dx.doi.org/10.1128/AAC.00235-18
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author Wall, Richard J.
Moniz, Sonia
Thomas, Michael G.
Norval, Suzanne
Ko, Eun-Jung
Marco, Maria
Miles, Timothy J.
Gilbert, Ian H.
Horn, David
Fairlamb, Alan H.
Wyllie, Susan
author_facet Wall, Richard J.
Moniz, Sonia
Thomas, Michael G.
Norval, Suzanne
Ko, Eun-Jung
Marco, Maria
Miles, Timothy J.
Gilbert, Ian H.
Horn, David
Fairlamb, Alan H.
Wyllie, Susan
author_sort Wall, Richard J.
collection PubMed
description The lack of information regarding the mechanisms of action (MoA) or specific molecular targets of phenotypically active compounds can prove a barrier to their development as chemotherapeutic agents. Here, we report the results of our orthogonal genetic, molecular, and biochemical studies to determine the MoA of a novel 7-substituted 8-hydroxy-1,6-naphthyridine (8-HNT) series that displays promising activity against Trypanosoma brucei and Leishmania donovani. High-throughput loss-of-function genetic screens in T. brucei highlighted two probable zinc transporters associated with resistance to these compounds. These transporters localized to the parasite Golgi apparatus. Directed by these findings, the role of zinc and other divalent cations in the MoA of these compounds was investigated. 8-HNT compounds were found to directly deplete intracellular levels of Zn(2+), while the addition of exogenous Zn(2+) and Fe(2+) reduced the potency of compounds from this series. Detailed biochemical analyses confirmed that 8-HNT compounds bind directly to a number of divalent cations, predominantly Zn(2+), Fe(2+), and Cu(2+), forming 2:1 complexes with one of these cations. Collectively, our studies demonstrate transition metal depletion, due to chelation, as the MoA of the 8-HNT series of compounds. Strategies to improve the selectivity of 8-HNT compounds are discussed.
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spelling pubmed-61058272018-08-24 Antitrypanosomal 8-Hydroxy-Naphthyridines Are Chelators of Divalent Transition Metals Wall, Richard J. Moniz, Sonia Thomas, Michael G. Norval, Suzanne Ko, Eun-Jung Marco, Maria Miles, Timothy J. Gilbert, Ian H. Horn, David Fairlamb, Alan H. Wyllie, Susan Antimicrob Agents Chemother Mechanisms of Action: Physiological Effects The lack of information regarding the mechanisms of action (MoA) or specific molecular targets of phenotypically active compounds can prove a barrier to their development as chemotherapeutic agents. Here, we report the results of our orthogonal genetic, molecular, and biochemical studies to determine the MoA of a novel 7-substituted 8-hydroxy-1,6-naphthyridine (8-HNT) series that displays promising activity against Trypanosoma brucei and Leishmania donovani. High-throughput loss-of-function genetic screens in T. brucei highlighted two probable zinc transporters associated with resistance to these compounds. These transporters localized to the parasite Golgi apparatus. Directed by these findings, the role of zinc and other divalent cations in the MoA of these compounds was investigated. 8-HNT compounds were found to directly deplete intracellular levels of Zn(2+), while the addition of exogenous Zn(2+) and Fe(2+) reduced the potency of compounds from this series. Detailed biochemical analyses confirmed that 8-HNT compounds bind directly to a number of divalent cations, predominantly Zn(2+), Fe(2+), and Cu(2+), forming 2:1 complexes with one of these cations. Collectively, our studies demonstrate transition metal depletion, due to chelation, as the MoA of the 8-HNT series of compounds. Strategies to improve the selectivity of 8-HNT compounds are discussed. American Society for Microbiology 2018-07-27 /pmc/articles/PMC6105827/ /pubmed/29844044 http://dx.doi.org/10.1128/AAC.00235-18 Text en Copyright © 2018 Wall et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Mechanisms of Action: Physiological Effects
Wall, Richard J.
Moniz, Sonia
Thomas, Michael G.
Norval, Suzanne
Ko, Eun-Jung
Marco, Maria
Miles, Timothy J.
Gilbert, Ian H.
Horn, David
Fairlamb, Alan H.
Wyllie, Susan
Antitrypanosomal 8-Hydroxy-Naphthyridines Are Chelators of Divalent Transition Metals
title Antitrypanosomal 8-Hydroxy-Naphthyridines Are Chelators of Divalent Transition Metals
title_full Antitrypanosomal 8-Hydroxy-Naphthyridines Are Chelators of Divalent Transition Metals
title_fullStr Antitrypanosomal 8-Hydroxy-Naphthyridines Are Chelators of Divalent Transition Metals
title_full_unstemmed Antitrypanosomal 8-Hydroxy-Naphthyridines Are Chelators of Divalent Transition Metals
title_short Antitrypanosomal 8-Hydroxy-Naphthyridines Are Chelators of Divalent Transition Metals
title_sort antitrypanosomal 8-hydroxy-naphthyridines are chelators of divalent transition metals
topic Mechanisms of Action: Physiological Effects
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6105827/
https://www.ncbi.nlm.nih.gov/pubmed/29844044
http://dx.doi.org/10.1128/AAC.00235-18
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