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Virtual screening and pharmacophore studies for ftase inhibitors using Indian plant anticancer compounds database
Farnesyl transferase (FTase) is an enzyme responsible for post-translational modification in proteins having a carboxy-terminal CaaX motif in human. It catalyzes the attachment of a lipid group in proteins of RAS superfamily, which is essential in signal transduction. FTase has been recognized as an...
Autores principales: | , , , , , |
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Formato: | Texto |
Lenguaje: | English |
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Biomedical Informatics
2010
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3039991/ https://www.ncbi.nlm.nih.gov/pubmed/21346865 |
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author | Khan, Abdul Hafeez Prakash, Alok Kumar, Dinesh Rawat, Anil Kumar Srivastava, Rajeev Srivastava, Shipra |
author_facet | Khan, Abdul Hafeez Prakash, Alok Kumar, Dinesh Rawat, Anil Kumar Srivastava, Rajeev Srivastava, Shipra |
author_sort | Khan, Abdul Hafeez |
collection | PubMed |
description | Farnesyl transferase (FTase) is an enzyme responsible for post-translational modification in proteins having a carboxy-terminal CaaX motif in human. It catalyzes the attachment of a lipid group in proteins of RAS superfamily, which is essential in signal transduction. FTase has been recognized as an important target for anti cancer therapeutics. In this work, we performed virtual screening against FTase with entire 125 compounds from Indian Plant Anticancer Database using AutoDock 3.0.5 software. All compounds were docked within binding pocket containing Lys164, Tyr300, His248 and Tyr361 residues in crystal structure of FTase. These complexes were ranked according to their docking score, using methodology that was shown to achieve maximum accuracy. Finally we got three potent compounds with the best Autodock docking Score (Vinorelbine: -21.28 Kcal/mol, Vincristine: -21.74 Kcal/mol and Vinblastine: -22.14 Kcal/mol) and their energy scores were better than the FTase bound co-crystallized ligand (L- 739: ―7.9 kcal/mol). These three compounds belong to Vinca alkaloids were analyzed through Python Molecular Viewer for their interaction studies. It predicted similar orientation and binding modes for these compounds with L-739 in FTase.Thus from the complex scoring and binding ability it is concluded that these Vinca alkaloids could be promising inhibitors for FTase. A 2-D pharmacophore was generated for these alkaloids using LigandScout to confirm it. A shared feature pharmacophore was also constructed that shows four common features (one hydogen bond Donar, Two hydrogen bond Acceptor and one ionizable area) help compounds to interact with this enzyme. |
format | Text |
id | pubmed-3039991 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2010 |
publisher | Biomedical Informatics |
record_format | MEDLINE/PubMed |
spelling | pubmed-30399912011-02-23 Virtual screening and pharmacophore studies for ftase inhibitors using Indian plant anticancer compounds database Khan, Abdul Hafeez Prakash, Alok Kumar, Dinesh Rawat, Anil Kumar Srivastava, Rajeev Srivastava, Shipra Bioinformation Hypothesis Farnesyl transferase (FTase) is an enzyme responsible for post-translational modification in proteins having a carboxy-terminal CaaX motif in human. It catalyzes the attachment of a lipid group in proteins of RAS superfamily, which is essential in signal transduction. FTase has been recognized as an important target for anti cancer therapeutics. In this work, we performed virtual screening against FTase with entire 125 compounds from Indian Plant Anticancer Database using AutoDock 3.0.5 software. All compounds were docked within binding pocket containing Lys164, Tyr300, His248 and Tyr361 residues in crystal structure of FTase. These complexes were ranked according to their docking score, using methodology that was shown to achieve maximum accuracy. Finally we got three potent compounds with the best Autodock docking Score (Vinorelbine: -21.28 Kcal/mol, Vincristine: -21.74 Kcal/mol and Vinblastine: -22.14 Kcal/mol) and their energy scores were better than the FTase bound co-crystallized ligand (L- 739: ―7.9 kcal/mol). These three compounds belong to Vinca alkaloids were analyzed through Python Molecular Viewer for their interaction studies. It predicted similar orientation and binding modes for these compounds with L-739 in FTase.Thus from the complex scoring and binding ability it is concluded that these Vinca alkaloids could be promising inhibitors for FTase. A 2-D pharmacophore was generated for these alkaloids using LigandScout to confirm it. A shared feature pharmacophore was also constructed that shows four common features (one hydogen bond Donar, Two hydrogen bond Acceptor and one ionizable area) help compounds to interact with this enzyme. Biomedical Informatics 2010-07-06 /pmc/articles/PMC3039991/ /pubmed/21346865 Text en © 2010 Biomedical Informatics This is an open-access article, which permits unrestricted use, distribution, and reproduction in any medium, for non-commercial purposes, provided the original author and source are credited. |
spellingShingle | Hypothesis Khan, Abdul Hafeez Prakash, Alok Kumar, Dinesh Rawat, Anil Kumar Srivastava, Rajeev Srivastava, Shipra Virtual screening and pharmacophore studies for ftase inhibitors using Indian plant anticancer compounds database |
title | Virtual screening and pharmacophore studies for ftase inhibitors using Indian plant anticancer compounds database |
title_full | Virtual screening and pharmacophore studies for ftase inhibitors using Indian plant anticancer compounds database |
title_fullStr | Virtual screening and pharmacophore studies for ftase inhibitors using Indian plant anticancer compounds database |
title_full_unstemmed | Virtual screening and pharmacophore studies for ftase inhibitors using Indian plant anticancer compounds database |
title_short | Virtual screening and pharmacophore studies for ftase inhibitors using Indian plant anticancer compounds database |
title_sort | virtual screening and pharmacophore studies for ftase inhibitors using indian plant anticancer compounds database |
topic | Hypothesis |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3039991/ https://www.ncbi.nlm.nih.gov/pubmed/21346865 |
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