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Identification of Novel Chemical Scaffolds Inhibiting Trypanothione Synthetase from Pathogenic Trypanosomatids

BACKGROUND: The search for novel chemical entities targeting essential and parasite-specific pathways is considered a priority for neglected diseases such as trypanosomiasis and leishmaniasis. The thiol-dependent redox metabolism of trypanosomatids relies on bis-glutathionylspermidine [trypanothione...

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Autores principales: Benítez, Diego, Medeiros, Andrea, Fiestas, Lucía, Panozzo-Zenere, Esteban A., Maiwald, Franziska, Prousis, Kyriakos C., Roussaki, Marina, Calogeropoulou, Theodora, Detsi, Anastasia, Jaeger, Timo, Šarlauskas, Jonas, Peterlin Mašič, Lucíja, Kunick, Conrad, Labadie, Guillermo R., Flohé, Leopold, Comini, Marcelo A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4829233/
https://www.ncbi.nlm.nih.gov/pubmed/27070550
http://dx.doi.org/10.1371/journal.pntd.0004617
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author Benítez, Diego
Medeiros, Andrea
Fiestas, Lucía
Panozzo-Zenere, Esteban A.
Maiwald, Franziska
Prousis, Kyriakos C.
Roussaki, Marina
Calogeropoulou, Theodora
Detsi, Anastasia
Jaeger, Timo
Šarlauskas, Jonas
Peterlin Mašič, Lucíja
Kunick, Conrad
Labadie, Guillermo R.
Flohé, Leopold
Comini, Marcelo A.
author_facet Benítez, Diego
Medeiros, Andrea
Fiestas, Lucía
Panozzo-Zenere, Esteban A.
Maiwald, Franziska
Prousis, Kyriakos C.
Roussaki, Marina
Calogeropoulou, Theodora
Detsi, Anastasia
Jaeger, Timo
Šarlauskas, Jonas
Peterlin Mašič, Lucíja
Kunick, Conrad
Labadie, Guillermo R.
Flohé, Leopold
Comini, Marcelo A.
author_sort Benítez, Diego
collection PubMed
description BACKGROUND: The search for novel chemical entities targeting essential and parasite-specific pathways is considered a priority for neglected diseases such as trypanosomiasis and leishmaniasis. The thiol-dependent redox metabolism of trypanosomatids relies on bis-glutathionylspermidine [trypanothione, T(SH)(2)], a low molecular mass cosubstrate absent in the host. In pathogenic trypanosomatids, a single enzyme, trypanothione synthetase (TryS), catalyzes trypanothione biosynthesis, which is indispensable for parasite survival. Thus, TryS qualifies as an attractive drug target candidate. METHODOLOGY/PRINCIPAL FINDING: A library composed of 144 compounds from 7 different families and several singletons was screened against TryS from three major pathogen species (Trypanosoma brucei, Trypanosoma cruzi and Leishmania infantum). The screening conditions were adjusted to the TryS´ kinetic parameters and intracellular concentration of substrates corresponding to each trypanosomatid species, and/or to avoid assay interference. The screening assay yielded suitable Z’ and signal to noise values (≥0.85 and ~3.5, respectively), and high intra-assay reproducibility. Several novel chemical scaffolds were identified as low μM and selective tri-tryp TryS inhibitors. Compounds displaying multi-TryS inhibition (N,N'-bis(3,4-substituted-benzyl) diamine derivatives) and an N(5)-substituted paullone (MOL2008) halted the proliferation of infective Trypanosoma brucei (EC(50) in the nM range) and Leishmania infantum promastigotes (EC(50) = 12 μM), respectively. A bis-benzyl diamine derivative and MOL2008 depleted intracellular trypanothione in treated parasites, which confirmed the on-target activity of these compounds. CONCLUSIONS/SIGNIFICANCE: Novel molecular scaffolds with on-target mode of action were identified as hit candidates for TryS inhibition. Due to the remarkable species-specificity exhibited by tri-tryp TryS towards the compounds, future optimization and screening campaigns should aim at designing and detecting, respectively, more potent and broad-range TryS inhibitors.
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spelling pubmed-48292332016-04-22 Identification of Novel Chemical Scaffolds Inhibiting Trypanothione Synthetase from Pathogenic Trypanosomatids Benítez, Diego Medeiros, Andrea Fiestas, Lucía Panozzo-Zenere, Esteban A. Maiwald, Franziska Prousis, Kyriakos C. Roussaki, Marina Calogeropoulou, Theodora Detsi, Anastasia Jaeger, Timo Šarlauskas, Jonas Peterlin Mašič, Lucíja Kunick, Conrad Labadie, Guillermo R. Flohé, Leopold Comini, Marcelo A. PLoS Negl Trop Dis Research Article BACKGROUND: The search for novel chemical entities targeting essential and parasite-specific pathways is considered a priority for neglected diseases such as trypanosomiasis and leishmaniasis. The thiol-dependent redox metabolism of trypanosomatids relies on bis-glutathionylspermidine [trypanothione, T(SH)(2)], a low molecular mass cosubstrate absent in the host. In pathogenic trypanosomatids, a single enzyme, trypanothione synthetase (TryS), catalyzes trypanothione biosynthesis, which is indispensable for parasite survival. Thus, TryS qualifies as an attractive drug target candidate. METHODOLOGY/PRINCIPAL FINDING: A library composed of 144 compounds from 7 different families and several singletons was screened against TryS from three major pathogen species (Trypanosoma brucei, Trypanosoma cruzi and Leishmania infantum). The screening conditions were adjusted to the TryS´ kinetic parameters and intracellular concentration of substrates corresponding to each trypanosomatid species, and/or to avoid assay interference. The screening assay yielded suitable Z’ and signal to noise values (≥0.85 and ~3.5, respectively), and high intra-assay reproducibility. Several novel chemical scaffolds were identified as low μM and selective tri-tryp TryS inhibitors. Compounds displaying multi-TryS inhibition (N,N'-bis(3,4-substituted-benzyl) diamine derivatives) and an N(5)-substituted paullone (MOL2008) halted the proliferation of infective Trypanosoma brucei (EC(50) in the nM range) and Leishmania infantum promastigotes (EC(50) = 12 μM), respectively. A bis-benzyl diamine derivative and MOL2008 depleted intracellular trypanothione in treated parasites, which confirmed the on-target activity of these compounds. CONCLUSIONS/SIGNIFICANCE: Novel molecular scaffolds with on-target mode of action were identified as hit candidates for TryS inhibition. Due to the remarkable species-specificity exhibited by tri-tryp TryS towards the compounds, future optimization and screening campaigns should aim at designing and detecting, respectively, more potent and broad-range TryS inhibitors. Public Library of Science 2016-04-12 /pmc/articles/PMC4829233/ /pubmed/27070550 http://dx.doi.org/10.1371/journal.pntd.0004617 Text en © 2016 Benítez et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://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
Benítez, Diego
Medeiros, Andrea
Fiestas, Lucía
Panozzo-Zenere, Esteban A.
Maiwald, Franziska
Prousis, Kyriakos C.
Roussaki, Marina
Calogeropoulou, Theodora
Detsi, Anastasia
Jaeger, Timo
Šarlauskas, Jonas
Peterlin Mašič, Lucíja
Kunick, Conrad
Labadie, Guillermo R.
Flohé, Leopold
Comini, Marcelo A.
Identification of Novel Chemical Scaffolds Inhibiting Trypanothione Synthetase from Pathogenic Trypanosomatids
title Identification of Novel Chemical Scaffolds Inhibiting Trypanothione Synthetase from Pathogenic Trypanosomatids
title_full Identification of Novel Chemical Scaffolds Inhibiting Trypanothione Synthetase from Pathogenic Trypanosomatids
title_fullStr Identification of Novel Chemical Scaffolds Inhibiting Trypanothione Synthetase from Pathogenic Trypanosomatids
title_full_unstemmed Identification of Novel Chemical Scaffolds Inhibiting Trypanothione Synthetase from Pathogenic Trypanosomatids
title_short Identification of Novel Chemical Scaffolds Inhibiting Trypanothione Synthetase from Pathogenic Trypanosomatids
title_sort identification of novel chemical scaffolds inhibiting trypanothione synthetase from pathogenic trypanosomatids
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4829233/
https://www.ncbi.nlm.nih.gov/pubmed/27070550
http://dx.doi.org/10.1371/journal.pntd.0004617
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