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Multiple unbiased approaches identify oxidosqualene cyclase as the molecular target of a promising anti-leishmanial

Phenotypic screening identified a benzothiophene compound with activity against Leishmania donovani, the causative agent of visceral leishmaniasis. Using multiple orthogonal approaches, oxidosqualene cyclase (OSC), a key enzyme of sterol biosynthesis, was identified as the target of this racemic com...

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Autores principales: Paradela, Luciana S., Wall, Richard J., Carvalho, Sandra, Chemi, Giulia, Corpas-Lopez, Victoriano, Moynihan, Eoin, Bello, Davide, Patterson, Stephen, Güther, Maria Lucia S., Fairlamb, Alan H., Ferguson, Michael A.J., Zuccotto, Fabio, Martin, Julio, Gilbert, Ian H., Wyllie, Susan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153249/
https://www.ncbi.nlm.nih.gov/pubmed/33691122
http://dx.doi.org/10.1016/j.chembiol.2021.02.008
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author Paradela, Luciana S.
Wall, Richard J.
Carvalho, Sandra
Chemi, Giulia
Corpas-Lopez, Victoriano
Moynihan, Eoin
Bello, Davide
Patterson, Stephen
Güther, Maria Lucia S.
Fairlamb, Alan H.
Ferguson, Michael A.J.
Zuccotto, Fabio
Martin, Julio
Gilbert, Ian H.
Wyllie, Susan
author_facet Paradela, Luciana S.
Wall, Richard J.
Carvalho, Sandra
Chemi, Giulia
Corpas-Lopez, Victoriano
Moynihan, Eoin
Bello, Davide
Patterson, Stephen
Güther, Maria Lucia S.
Fairlamb, Alan H.
Ferguson, Michael A.J.
Zuccotto, Fabio
Martin, Julio
Gilbert, Ian H.
Wyllie, Susan
author_sort Paradela, Luciana S.
collection PubMed
description Phenotypic screening identified a benzothiophene compound with activity against Leishmania donovani, the causative agent of visceral leishmaniasis. Using multiple orthogonal approaches, oxidosqualene cyclase (OSC), a key enzyme of sterol biosynthesis, was identified as the target of this racemic compound and its enantiomers. Whole genome sequencing and screening of a genome-wide overexpression library confirmed that OSC gene amplification is associated with resistance to compound 1. Introduction of an ectopic copy of the OSC gene into wild-type cells reduced susceptibility to these compounds confirming the role of this enzyme in resistance. Biochemical analyses demonstrated the accumulation of the substrate of OSC and depletion of its product in compound (S)-1-treated-promastigotes and cell-free membrane preparations, respectively. Thermal proteome profiling confirmed that compound (S)-1 binds directly to OSC. Finally, modeling and docking studies identified key interactions between compound (S)-1 and the LdOSC active site. Strategies to improve the potency for this promising anti-leishmanial are proposed.
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spelling pubmed-81532492021-06-02 Multiple unbiased approaches identify oxidosqualene cyclase as the molecular target of a promising anti-leishmanial Paradela, Luciana S. Wall, Richard J. Carvalho, Sandra Chemi, Giulia Corpas-Lopez, Victoriano Moynihan, Eoin Bello, Davide Patterson, Stephen Güther, Maria Lucia S. Fairlamb, Alan H. Ferguson, Michael A.J. Zuccotto, Fabio Martin, Julio Gilbert, Ian H. Wyllie, Susan Cell Chem Biol Article Phenotypic screening identified a benzothiophene compound with activity against Leishmania donovani, the causative agent of visceral leishmaniasis. Using multiple orthogonal approaches, oxidosqualene cyclase (OSC), a key enzyme of sterol biosynthesis, was identified as the target of this racemic compound and its enantiomers. Whole genome sequencing and screening of a genome-wide overexpression library confirmed that OSC gene amplification is associated with resistance to compound 1. Introduction of an ectopic copy of the OSC gene into wild-type cells reduced susceptibility to these compounds confirming the role of this enzyme in resistance. Biochemical analyses demonstrated the accumulation of the substrate of OSC and depletion of its product in compound (S)-1-treated-promastigotes and cell-free membrane preparations, respectively. Thermal proteome profiling confirmed that compound (S)-1 binds directly to OSC. Finally, modeling and docking studies identified key interactions between compound (S)-1 and the LdOSC active site. Strategies to improve the potency for this promising anti-leishmanial are proposed. Cell Press 2021-05-20 /pmc/articles/PMC8153249/ /pubmed/33691122 http://dx.doi.org/10.1016/j.chembiol.2021.02.008 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Paradela, Luciana S.
Wall, Richard J.
Carvalho, Sandra
Chemi, Giulia
Corpas-Lopez, Victoriano
Moynihan, Eoin
Bello, Davide
Patterson, Stephen
Güther, Maria Lucia S.
Fairlamb, Alan H.
Ferguson, Michael A.J.
Zuccotto, Fabio
Martin, Julio
Gilbert, Ian H.
Wyllie, Susan
Multiple unbiased approaches identify oxidosqualene cyclase as the molecular target of a promising anti-leishmanial
title Multiple unbiased approaches identify oxidosqualene cyclase as the molecular target of a promising anti-leishmanial
title_full Multiple unbiased approaches identify oxidosqualene cyclase as the molecular target of a promising anti-leishmanial
title_fullStr Multiple unbiased approaches identify oxidosqualene cyclase as the molecular target of a promising anti-leishmanial
title_full_unstemmed Multiple unbiased approaches identify oxidosqualene cyclase as the molecular target of a promising anti-leishmanial
title_short Multiple unbiased approaches identify oxidosqualene cyclase as the molecular target of a promising anti-leishmanial
title_sort multiple unbiased approaches identify oxidosqualene cyclase as the molecular target of a promising anti-leishmanial
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153249/
https://www.ncbi.nlm.nih.gov/pubmed/33691122
http://dx.doi.org/10.1016/j.chembiol.2021.02.008
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