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Exploring the Binding Pattern of Geraniol with Acetylcholinesterase through In Silico Docking, Molecular Dynamics Simulation, and In Vitro Enzyme Inhibition Kinetics Studies

Acetylcholinesterase (AChE) inhibition is a key element in enhancing cholinergic transmission and subsequently relieving major symptoms of several neurological and neuromuscular disorders. Here, the inhibitory potential of geraniol and its mechanism of inhibition against AChE were elucidated in vitr...

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Autores principales: Iqbal, Danish, Khan, M. Salman, Waiz, Mohd, Rehman, Md Tabish, Alaidarous, Mohammed, Jamal, Azfar, Alothaim, Abdulaziz S., AlAjmi, Mohamed F, Alshehri, Bader Mohammed, Banawas, Saeed, Alsaweed, Mohammed, Madkhali, Yahya, Algarni, Abdulrahman, Alsagaby, Suliman A., Alturaiki, Wael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8700130/
https://www.ncbi.nlm.nih.gov/pubmed/34944045
http://dx.doi.org/10.3390/cells10123533
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author Iqbal, Danish
Khan, M. Salman
Waiz, Mohd
Rehman, Md Tabish
Alaidarous, Mohammed
Jamal, Azfar
Alothaim, Abdulaziz S.
AlAjmi, Mohamed F
Alshehri, Bader Mohammed
Banawas, Saeed
Alsaweed, Mohammed
Madkhali, Yahya
Algarni, Abdulrahman
Alsagaby, Suliman A.
Alturaiki, Wael
author_facet Iqbal, Danish
Khan, M. Salman
Waiz, Mohd
Rehman, Md Tabish
Alaidarous, Mohammed
Jamal, Azfar
Alothaim, Abdulaziz S.
AlAjmi, Mohamed F
Alshehri, Bader Mohammed
Banawas, Saeed
Alsaweed, Mohammed
Madkhali, Yahya
Algarni, Abdulrahman
Alsagaby, Suliman A.
Alturaiki, Wael
author_sort Iqbal, Danish
collection PubMed
description Acetylcholinesterase (AChE) inhibition is a key element in enhancing cholinergic transmission and subsequently relieving major symptoms of several neurological and neuromuscular disorders. Here, the inhibitory potential of geraniol and its mechanism of inhibition against AChE were elucidated in vitro and validated via an in silico study. Our in vitro enzyme inhibition kinetics results show that at increasing concentrations of geraniol and substrate, Vmax did not change significantly, but Km increased, which indicates that geraniol is a competitive inhibitor against AChE with an IC(50) value 98.06 ± 3.92 µM. All the parameters of the ADME study revealed that geraniol is an acceptable drug candidate. A docking study showed that the binding energy of geraniol (−5.6 kcal mol(−1)) was lower than that of acetylcholine (−4.1 kcal mol(−1)) with AChE, which exhibited around a 12.58-fold higher binding affinity of geraniol. Furthermore, molecular dynamics simulation revealed that the RMSD of AChE alone or in complex with geraniol fluctuated within acceptable limits throughout the simulation. The mean RMSF value of the complex ensures that the overall conformation of the protein remains conserved. The average values of Rg, MolSA, SASA, and PSA of the complex were 3.16 Å, 204.78, 9.13, and 51.58 Å(2), respectively. We found that the total SSE of AChE in the complex was 38.84% (α-helix: 26.57% and β-sheets: 12.27%) and remained consistent throughout the simulation. These findings suggest that geraniol remained inside the binding cavity of AChE in a stable conformation. Further in vivo investigation is required to fully characterize the pharmacokinetic properties, optimization of dose administration, and efficacy of this plant-based natural compound.
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spelling pubmed-87001302021-12-24 Exploring the Binding Pattern of Geraniol with Acetylcholinesterase through In Silico Docking, Molecular Dynamics Simulation, and In Vitro Enzyme Inhibition Kinetics Studies Iqbal, Danish Khan, M. Salman Waiz, Mohd Rehman, Md Tabish Alaidarous, Mohammed Jamal, Azfar Alothaim, Abdulaziz S. AlAjmi, Mohamed F Alshehri, Bader Mohammed Banawas, Saeed Alsaweed, Mohammed Madkhali, Yahya Algarni, Abdulrahman Alsagaby, Suliman A. Alturaiki, Wael Cells Article Acetylcholinesterase (AChE) inhibition is a key element in enhancing cholinergic transmission and subsequently relieving major symptoms of several neurological and neuromuscular disorders. Here, the inhibitory potential of geraniol and its mechanism of inhibition against AChE were elucidated in vitro and validated via an in silico study. Our in vitro enzyme inhibition kinetics results show that at increasing concentrations of geraniol and substrate, Vmax did not change significantly, but Km increased, which indicates that geraniol is a competitive inhibitor against AChE with an IC(50) value 98.06 ± 3.92 µM. All the parameters of the ADME study revealed that geraniol is an acceptable drug candidate. A docking study showed that the binding energy of geraniol (−5.6 kcal mol(−1)) was lower than that of acetylcholine (−4.1 kcal mol(−1)) with AChE, which exhibited around a 12.58-fold higher binding affinity of geraniol. Furthermore, molecular dynamics simulation revealed that the RMSD of AChE alone or in complex with geraniol fluctuated within acceptable limits throughout the simulation. The mean RMSF value of the complex ensures that the overall conformation of the protein remains conserved. The average values of Rg, MolSA, SASA, and PSA of the complex were 3.16 Å, 204.78, 9.13, and 51.58 Å(2), respectively. We found that the total SSE of AChE in the complex was 38.84% (α-helix: 26.57% and β-sheets: 12.27%) and remained consistent throughout the simulation. These findings suggest that geraniol remained inside the binding cavity of AChE in a stable conformation. Further in vivo investigation is required to fully characterize the pharmacokinetic properties, optimization of dose administration, and efficacy of this plant-based natural compound. MDPI 2021-12-14 /pmc/articles/PMC8700130/ /pubmed/34944045 http://dx.doi.org/10.3390/cells10123533 Text en © 2021 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
Iqbal, Danish
Khan, M. Salman
Waiz, Mohd
Rehman, Md Tabish
Alaidarous, Mohammed
Jamal, Azfar
Alothaim, Abdulaziz S.
AlAjmi, Mohamed F
Alshehri, Bader Mohammed
Banawas, Saeed
Alsaweed, Mohammed
Madkhali, Yahya
Algarni, Abdulrahman
Alsagaby, Suliman A.
Alturaiki, Wael
Exploring the Binding Pattern of Geraniol with Acetylcholinesterase through In Silico Docking, Molecular Dynamics Simulation, and In Vitro Enzyme Inhibition Kinetics Studies
title Exploring the Binding Pattern of Geraniol with Acetylcholinesterase through In Silico Docking, Molecular Dynamics Simulation, and In Vitro Enzyme Inhibition Kinetics Studies
title_full Exploring the Binding Pattern of Geraniol with Acetylcholinesterase through In Silico Docking, Molecular Dynamics Simulation, and In Vitro Enzyme Inhibition Kinetics Studies
title_fullStr Exploring the Binding Pattern of Geraniol with Acetylcholinesterase through In Silico Docking, Molecular Dynamics Simulation, and In Vitro Enzyme Inhibition Kinetics Studies
title_full_unstemmed Exploring the Binding Pattern of Geraniol with Acetylcholinesterase through In Silico Docking, Molecular Dynamics Simulation, and In Vitro Enzyme Inhibition Kinetics Studies
title_short Exploring the Binding Pattern of Geraniol with Acetylcholinesterase through In Silico Docking, Molecular Dynamics Simulation, and In Vitro Enzyme Inhibition Kinetics Studies
title_sort exploring the binding pattern of geraniol with acetylcholinesterase through in silico docking, molecular dynamics simulation, and in vitro enzyme inhibition kinetics studies
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8700130/
https://www.ncbi.nlm.nih.gov/pubmed/34944045
http://dx.doi.org/10.3390/cells10123533
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