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Homology Modeling of Leishmanolysin (gp63) from Leishmania panamensis and Molecular Docking of Flavonoids

[Image: see text] Leishmaniasis is a chronic disease caused by protozoa of the distinct Leishmania genus transmitted by sandflies of the genus Phlebotomus (old world) and Lutzomyia (new world). Among the molecular factors that contribute to the virulence and pathogenesis of Leishmania are metallopro...

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Autores principales: Mercado-Camargo, Jairo, Cervantes-Ceballos, Leonor, Vivas-Reyes, Ricardo, Pedretti, Alessandro, Serrano-García, María Luisa, Gómez-Estrada, Harold
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7315592/
https://www.ncbi.nlm.nih.gov/pubmed/32596611
http://dx.doi.org/10.1021/acsomega.0c01584
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author Mercado-Camargo, Jairo
Cervantes-Ceballos, Leonor
Vivas-Reyes, Ricardo
Pedretti, Alessandro
Serrano-García, María Luisa
Gómez-Estrada, Harold
author_facet Mercado-Camargo, Jairo
Cervantes-Ceballos, Leonor
Vivas-Reyes, Ricardo
Pedretti, Alessandro
Serrano-García, María Luisa
Gómez-Estrada, Harold
author_sort Mercado-Camargo, Jairo
collection PubMed
description [Image: see text] Leishmaniasis is a chronic disease caused by protozoa of the distinct Leishmania genus transmitted by sandflies of the genus Phlebotomus (old world) and Lutzomyia (new world). Among the molecular factors that contribute to the virulence and pathogenesis of Leishmania are metalloproteases, e.g., glycoprotein 63 (gp63), also known as leishmanolysin or major surface protease (MSP). This protease is a zinc-dependent metalloprotease that is found on the surface of the parasite, abundant in Leishmania promastigote and amastigote. This study describes the prediction of three-dimensional (3D) structures of leishmanolysin (UniProt ID A0A088RJX7) of Leishmania panamensis employing a homology modeling approach. The 3D structure prediction was performed using the SWISS-MODEL web server. The tools PROCHECK, Molprobyty, and Verify3D were used to check the quality of the model, indicating that they are reliable. Best docking configurations were identified applying AutoDock Vina in PyRx 0.8 to obtain a potential antileishmanial activity. Biflavonoids such as lanaroflavone, podocarpusflavone A, amentoflavone, and podocarpusflavone B showed good scores among these molecules. Lanaroflavone appears to be the most suitable compound from binding affinity calculations.
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spelling pubmed-73155922020-06-26 Homology Modeling of Leishmanolysin (gp63) from Leishmania panamensis and Molecular Docking of Flavonoids Mercado-Camargo, Jairo Cervantes-Ceballos, Leonor Vivas-Reyes, Ricardo Pedretti, Alessandro Serrano-García, María Luisa Gómez-Estrada, Harold ACS Omega [Image: see text] Leishmaniasis is a chronic disease caused by protozoa of the distinct Leishmania genus transmitted by sandflies of the genus Phlebotomus (old world) and Lutzomyia (new world). Among the molecular factors that contribute to the virulence and pathogenesis of Leishmania are metalloproteases, e.g., glycoprotein 63 (gp63), also known as leishmanolysin or major surface protease (MSP). This protease is a zinc-dependent metalloprotease that is found on the surface of the parasite, abundant in Leishmania promastigote and amastigote. This study describes the prediction of three-dimensional (3D) structures of leishmanolysin (UniProt ID A0A088RJX7) of Leishmania panamensis employing a homology modeling approach. The 3D structure prediction was performed using the SWISS-MODEL web server. The tools PROCHECK, Molprobyty, and Verify3D were used to check the quality of the model, indicating that they are reliable. Best docking configurations were identified applying AutoDock Vina in PyRx 0.8 to obtain a potential antileishmanial activity. Biflavonoids such as lanaroflavone, podocarpusflavone A, amentoflavone, and podocarpusflavone B showed good scores among these molecules. Lanaroflavone appears to be the most suitable compound from binding affinity calculations. American Chemical Society 2020-06-10 /pmc/articles/PMC7315592/ /pubmed/32596611 http://dx.doi.org/10.1021/acsomega.0c01584 Text en Copyright © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Mercado-Camargo, Jairo
Cervantes-Ceballos, Leonor
Vivas-Reyes, Ricardo
Pedretti, Alessandro
Serrano-García, María Luisa
Gómez-Estrada, Harold
Homology Modeling of Leishmanolysin (gp63) from Leishmania panamensis and Molecular Docking of Flavonoids
title Homology Modeling of Leishmanolysin (gp63) from Leishmania panamensis and Molecular Docking of Flavonoids
title_full Homology Modeling of Leishmanolysin (gp63) from Leishmania panamensis and Molecular Docking of Flavonoids
title_fullStr Homology Modeling of Leishmanolysin (gp63) from Leishmania panamensis and Molecular Docking of Flavonoids
title_full_unstemmed Homology Modeling of Leishmanolysin (gp63) from Leishmania panamensis and Molecular Docking of Flavonoids
title_short Homology Modeling of Leishmanolysin (gp63) from Leishmania panamensis and Molecular Docking of Flavonoids
title_sort homology modeling of leishmanolysin (gp63) from leishmania panamensis and molecular docking of flavonoids
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7315592/
https://www.ncbi.nlm.nih.gov/pubmed/32596611
http://dx.doi.org/10.1021/acsomega.0c01584
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