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Simvastatin Resistance of Leishmania amazonensis Induces Sterol Remodeling and Cross-Resistance to Sterol Pathway and Serine Protease Inhibitors

The sterol biosynthesis pathway of Leishmania spp. is used as a pharmacological target; however, available information about the mechanisms of the regulation and remodeling of sterol-related genes is scarce. The present study investigated compensatory mechanisms of the sterol biosynthesis pathway us...

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Autores principales: Fujii, Thais Tenorio Soares, Gomes, Pollyanna Stephanie, do Monte-Neto, Rubens Lima, de Oliveira Gomes, Daniel Claudio, Ouellette, Marc, Torres-Santos, Eduardo Caio, Andrade-Neto, Valter Viana, de Matos Guedes, Herbert Leonel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8877030/
https://www.ncbi.nlm.nih.gov/pubmed/35208853
http://dx.doi.org/10.3390/microorganisms10020398
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author Fujii, Thais Tenorio Soares
Gomes, Pollyanna Stephanie
do Monte-Neto, Rubens Lima
de Oliveira Gomes, Daniel Claudio
Ouellette, Marc
Torres-Santos, Eduardo Caio
Andrade-Neto, Valter Viana
de Matos Guedes, Herbert Leonel
author_facet Fujii, Thais Tenorio Soares
Gomes, Pollyanna Stephanie
do Monte-Neto, Rubens Lima
de Oliveira Gomes, Daniel Claudio
Ouellette, Marc
Torres-Santos, Eduardo Caio
Andrade-Neto, Valter Viana
de Matos Guedes, Herbert Leonel
author_sort Fujii, Thais Tenorio Soares
collection PubMed
description The sterol biosynthesis pathway of Leishmania spp. is used as a pharmacological target; however, available information about the mechanisms of the regulation and remodeling of sterol-related genes is scarce. The present study investigated compensatory mechanisms of the sterol biosynthesis pathway using an inhibitor of HMG-CoA reductase (simvastatin) and by developing drug-resistant parasites to evaluate the impact on sterol remodeling, cross-resistance, and gene expression. Simvastatin-resistant L. amazonensis parasites (LaSimR) underwent reprogramming of sterol metabolism manifested as an increase in cholestane- and stigmastane-based sterols and a decrease in ergostane-based sterols. The levels of the transcripts of sterol 24-C-methyltransferase (SMT), sterol C14-α-demethylase (C14DM), and protease subtilisin (SUB) were increased in LaSimR. LaSimR was cross-resistance to ketoconazole (a C14DM inhibitor) and remained sensitive to terbinafine (an inhibitor of squalene monooxygenase). Sensitivity of the LaSimR mutant to other antileishmanial drugs unrelated to the sterol biosynthesis pathway, such as trivalent antimony and pentamidine, was similar to that of the wild-type strain; however, LaSimR was cross-resistant to miltefosine, general serine protease inhibitor N-p-tosyl-l-phenylalanine chloromethyl ketone (TPCK), subtilisin-specific inhibitor 4-[(diethylamino)methyl]-N-[2-(2-methoxyphenyl)ethyl]-N-(3R)-3-pyrrolidinyl-benzamide dihydrochloride (PF-429242), and tunicamycin. The findings on the regulation of the sterol pathway can support the development of drugs and protease inhibitors targeting this route in parasites.
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spelling pubmed-88770302022-02-26 Simvastatin Resistance of Leishmania amazonensis Induces Sterol Remodeling and Cross-Resistance to Sterol Pathway and Serine Protease Inhibitors Fujii, Thais Tenorio Soares Gomes, Pollyanna Stephanie do Monte-Neto, Rubens Lima de Oliveira Gomes, Daniel Claudio Ouellette, Marc Torres-Santos, Eduardo Caio Andrade-Neto, Valter Viana de Matos Guedes, Herbert Leonel Microorganisms Article The sterol biosynthesis pathway of Leishmania spp. is used as a pharmacological target; however, available information about the mechanisms of the regulation and remodeling of sterol-related genes is scarce. The present study investigated compensatory mechanisms of the sterol biosynthesis pathway using an inhibitor of HMG-CoA reductase (simvastatin) and by developing drug-resistant parasites to evaluate the impact on sterol remodeling, cross-resistance, and gene expression. Simvastatin-resistant L. amazonensis parasites (LaSimR) underwent reprogramming of sterol metabolism manifested as an increase in cholestane- and stigmastane-based sterols and a decrease in ergostane-based sterols. The levels of the transcripts of sterol 24-C-methyltransferase (SMT), sterol C14-α-demethylase (C14DM), and protease subtilisin (SUB) were increased in LaSimR. LaSimR was cross-resistance to ketoconazole (a C14DM inhibitor) and remained sensitive to terbinafine (an inhibitor of squalene monooxygenase). Sensitivity of the LaSimR mutant to other antileishmanial drugs unrelated to the sterol biosynthesis pathway, such as trivalent antimony and pentamidine, was similar to that of the wild-type strain; however, LaSimR was cross-resistant to miltefosine, general serine protease inhibitor N-p-tosyl-l-phenylalanine chloromethyl ketone (TPCK), subtilisin-specific inhibitor 4-[(diethylamino)methyl]-N-[2-(2-methoxyphenyl)ethyl]-N-(3R)-3-pyrrolidinyl-benzamide dihydrochloride (PF-429242), and tunicamycin. The findings on the regulation of the sterol pathway can support the development of drugs and protease inhibitors targeting this route in parasites. MDPI 2022-02-09 /pmc/articles/PMC8877030/ /pubmed/35208853 http://dx.doi.org/10.3390/microorganisms10020398 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fujii, Thais Tenorio Soares
Gomes, Pollyanna Stephanie
do Monte-Neto, Rubens Lima
de Oliveira Gomes, Daniel Claudio
Ouellette, Marc
Torres-Santos, Eduardo Caio
Andrade-Neto, Valter Viana
de Matos Guedes, Herbert Leonel
Simvastatin Resistance of Leishmania amazonensis Induces Sterol Remodeling and Cross-Resistance to Sterol Pathway and Serine Protease Inhibitors
title Simvastatin Resistance of Leishmania amazonensis Induces Sterol Remodeling and Cross-Resistance to Sterol Pathway and Serine Protease Inhibitors
title_full Simvastatin Resistance of Leishmania amazonensis Induces Sterol Remodeling and Cross-Resistance to Sterol Pathway and Serine Protease Inhibitors
title_fullStr Simvastatin Resistance of Leishmania amazonensis Induces Sterol Remodeling and Cross-Resistance to Sterol Pathway and Serine Protease Inhibitors
title_full_unstemmed Simvastatin Resistance of Leishmania amazonensis Induces Sterol Remodeling and Cross-Resistance to Sterol Pathway and Serine Protease Inhibitors
title_short Simvastatin Resistance of Leishmania amazonensis Induces Sterol Remodeling and Cross-Resistance to Sterol Pathway and Serine Protease Inhibitors
title_sort simvastatin resistance of leishmania amazonensis induces sterol remodeling and cross-resistance to sterol pathway and serine protease inhibitors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8877030/
https://www.ncbi.nlm.nih.gov/pubmed/35208853
http://dx.doi.org/10.3390/microorganisms10020398
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