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An In Silico Molecular Modelling-Based Prediction of Potential Keap1 Inhibitors from Hemidesmus indicus (L.) R.Br. against Oxidative-Stress-Induced Diseases

The present study investigated the antioxidant potential of aqueous methanolic extracts of Hemidesmus indicus (L.) R.Br., followed by a pharmacoinformatics-based screening of novel Keap1 protein inhibitors. Initially, the antioxidant potential of this plant extract was assessed via antioxidant assay...

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Autores principales: Vellur, Senthilkumar, Pavadai, Parasuraman, Babkiewicz, Ewa, Ram Kumar Pandian, Sureshbabu, Maszczyk, Piotr, Kunjiappan, Selvaraj
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10254626/
https://www.ncbi.nlm.nih.gov/pubmed/37299017
http://dx.doi.org/10.3390/molecules28114541
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author Vellur, Senthilkumar
Pavadai, Parasuraman
Babkiewicz, Ewa
Ram Kumar Pandian, Sureshbabu
Maszczyk, Piotr
Kunjiappan, Selvaraj
author_facet Vellur, Senthilkumar
Pavadai, Parasuraman
Babkiewicz, Ewa
Ram Kumar Pandian, Sureshbabu
Maszczyk, Piotr
Kunjiappan, Selvaraj
author_sort Vellur, Senthilkumar
collection PubMed
description The present study investigated the antioxidant potential of aqueous methanolic extracts of Hemidesmus indicus (L.) R.Br., followed by a pharmacoinformatics-based screening of novel Keap1 protein inhibitors. Initially, the antioxidant potential of this plant extract was assessed via antioxidant assays (DPPH, ABTS radical scavenging, and FRAP). Furthermore, 69 phytocompounds in total were derived from this plant using the IMPPAT database, and their three-dimensional structures were obtained from the PubChem database. The chosen 69 phytocompounds were docked against the Kelch–Neh2 complex protein (PDB entry ID: 2flu, resolution 1.50 Å) along with the standard drug (CPUY192018). H. indicus (L.) R.Br. extract (100 µg × mL(−1)) showed 85 ± 2.917%, 78.783 ± 0.24% of DPPH, ABTS radicals scavenging activity, and 161 ± 4 μg × mol (Fe (II)) g(−1) ferric ion reducing power. The three top-scored hits, namely Hemidescine (−11.30 Kcal × mol(−1)), Beta-Amyrin (−10.00 Kcal × mol(−1)), and Quercetin (−9.80 Kcal × mol(−1)), were selected based on their binding affinities. MD simulation studies showed that all the protein–ligand complexes (Keap1–HEM, Keap1–BET, and Keap1–QUE) were highly stable during the entire simulation period, compared with the standard CPUY192018–Keap1 complex. Based on these findings, the three top-scored phytocompounds may be used as significant and safe Keap1 inhibitors, and could potentially be used for the treatment of oxidative-stress-induced health complications.
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spelling pubmed-102546262023-06-10 An In Silico Molecular Modelling-Based Prediction of Potential Keap1 Inhibitors from Hemidesmus indicus (L.) R.Br. against Oxidative-Stress-Induced Diseases Vellur, Senthilkumar Pavadai, Parasuraman Babkiewicz, Ewa Ram Kumar Pandian, Sureshbabu Maszczyk, Piotr Kunjiappan, Selvaraj Molecules Article The present study investigated the antioxidant potential of aqueous methanolic extracts of Hemidesmus indicus (L.) R.Br., followed by a pharmacoinformatics-based screening of novel Keap1 protein inhibitors. Initially, the antioxidant potential of this plant extract was assessed via antioxidant assays (DPPH, ABTS radical scavenging, and FRAP). Furthermore, 69 phytocompounds in total were derived from this plant using the IMPPAT database, and their three-dimensional structures were obtained from the PubChem database. The chosen 69 phytocompounds were docked against the Kelch–Neh2 complex protein (PDB entry ID: 2flu, resolution 1.50 Å) along with the standard drug (CPUY192018). H. indicus (L.) R.Br. extract (100 µg × mL(−1)) showed 85 ± 2.917%, 78.783 ± 0.24% of DPPH, ABTS radicals scavenging activity, and 161 ± 4 μg × mol (Fe (II)) g(−1) ferric ion reducing power. The three top-scored hits, namely Hemidescine (−11.30 Kcal × mol(−1)), Beta-Amyrin (−10.00 Kcal × mol(−1)), and Quercetin (−9.80 Kcal × mol(−1)), were selected based on their binding affinities. MD simulation studies showed that all the protein–ligand complexes (Keap1–HEM, Keap1–BET, and Keap1–QUE) were highly stable during the entire simulation period, compared with the standard CPUY192018–Keap1 complex. Based on these findings, the three top-scored phytocompounds may be used as significant and safe Keap1 inhibitors, and could potentially be used for the treatment of oxidative-stress-induced health complications. MDPI 2023-06-03 /pmc/articles/PMC10254626/ /pubmed/37299017 http://dx.doi.org/10.3390/molecules28114541 Text en © 2023 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
Vellur, Senthilkumar
Pavadai, Parasuraman
Babkiewicz, Ewa
Ram Kumar Pandian, Sureshbabu
Maszczyk, Piotr
Kunjiappan, Selvaraj
An In Silico Molecular Modelling-Based Prediction of Potential Keap1 Inhibitors from Hemidesmus indicus (L.) R.Br. against Oxidative-Stress-Induced Diseases
title An In Silico Molecular Modelling-Based Prediction of Potential Keap1 Inhibitors from Hemidesmus indicus (L.) R.Br. against Oxidative-Stress-Induced Diseases
title_full An In Silico Molecular Modelling-Based Prediction of Potential Keap1 Inhibitors from Hemidesmus indicus (L.) R.Br. against Oxidative-Stress-Induced Diseases
title_fullStr An In Silico Molecular Modelling-Based Prediction of Potential Keap1 Inhibitors from Hemidesmus indicus (L.) R.Br. against Oxidative-Stress-Induced Diseases
title_full_unstemmed An In Silico Molecular Modelling-Based Prediction of Potential Keap1 Inhibitors from Hemidesmus indicus (L.) R.Br. against Oxidative-Stress-Induced Diseases
title_short An In Silico Molecular Modelling-Based Prediction of Potential Keap1 Inhibitors from Hemidesmus indicus (L.) R.Br. against Oxidative-Stress-Induced Diseases
title_sort in silico molecular modelling-based prediction of potential keap1 inhibitors from hemidesmus indicus (l.) r.br. against oxidative-stress-induced diseases
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10254626/
https://www.ncbi.nlm.nih.gov/pubmed/37299017
http://dx.doi.org/10.3390/molecules28114541
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