Tags

Type your tag names separated by a space and hit enter

Exploring molecular structural requirement for AChE inhibition through multi-chemometric and dynamics simulation analyses.
J Biomol Struct Dyn. 2018 Apr; 36(5):1274-1285.JB

Abstract

The acetylcholinesterase enzyme (AChE) plays an important role in central and peripheral nervous systems. Acetylcholine (ACh) acts through the regulation of AChE activity, which can play a key role in accelerating senile amyloid β-peptide (Aβ) plaque deposition. Therefore, inhibition of the AChE enzyme can be used as a key principle to prevent ACh depletion. The present study has been emphasized to explore both ligand- and structure-based 3D QSAR, HQSAR, pharmacophore, molecular docking and simulation studies on a set of structurally diverse inhibitors to optimize prime structural features responsible for selective binding to AChE, and vis-à-vis inhibiting enzyme activity. The pharmacophore model showed the importance of HB acceptor and donor, positive ionization and hydrophobic features of the molecule for effective binding. Structure-based docking and simulation studies adjudged the significance of features obtained from ligand-based 3D QSAR, CoMFA (Q2 = .608, [Formula: see text] = .700), CoMSIA (Q2 = .632, [Formula: see text] = .734), HQSAR (Q2 = .850, [Formula: see text] = .693) and pharmacophore (Q2 = .839, ROCscore = .769) models. The aim of the present study is to identify the essential structural and physicochemical profiles of molecules that can provide therapeutic benefits with less toxicity. Structurally diverse compounds have been used for the study, and the generated models showed the large applicability domain.

Authors+Show Affiliations

a Department of Chemical Technology , University of Calcutta , 92, A. P. C. Road, Kolkata , 700009 , India.a Department of Chemical Technology , University of Calcutta , 92, A. P. C. Road, Kolkata , 700009 , India.a Department of Chemical Technology , University of Calcutta , 92, A. P. C. Road, Kolkata , 700009 , India.

Pub Type(s)

Journal Article

Language

eng

PubMed ID

28417668

Citation

Hossain, Tabassum, et al. "Exploring Molecular Structural Requirement for AChE Inhibition Through Multi-chemometric and Dynamics Simulation Analyses." Journal of Biomolecular Structure & Dynamics, vol. 36, no. 5, 2018, pp. 1274-1285.
Hossain T, Saha A, Mukherjee A. Exploring molecular structural requirement for AChE inhibition through multi-chemometric and dynamics simulation analyses. J Biomol Struct Dyn. 2018;36(5):1274-1285.
Hossain, T., Saha, A., & Mukherjee, A. (2018). Exploring molecular structural requirement for AChE inhibition through multi-chemometric and dynamics simulation analyses. Journal of Biomolecular Structure & Dynamics, 36(5), 1274-1285. https://doi.org/10.1080/07391102.2017.1320231
Hossain T, Saha A, Mukherjee A. Exploring Molecular Structural Requirement for AChE Inhibition Through Multi-chemometric and Dynamics Simulation Analyses. J Biomol Struct Dyn. 2018;36(5):1274-1285. PubMed PMID: 28417668.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Exploring molecular structural requirement for AChE inhibition through multi-chemometric and dynamics simulation analyses. AU - Hossain,Tabassum, AU - Saha,Achintya, AU - Mukherjee,Arup, Y1 - 2017/04/28/ PY - 2017/4/19/pubmed PY - 2019/1/22/medline PY - 2017/4/19/entrez KW - CoMFA KW - CoMSIA KW - HQSAR KW - acetylcholinesterase KW - molecular dynamics KW - pharmacophore mapping SP - 1274 EP - 1285 JF - Journal of biomolecular structure & dynamics JO - J Biomol Struct Dyn VL - 36 IS - 5 N2 - The acetylcholinesterase enzyme (AChE) plays an important role in central and peripheral nervous systems. Acetylcholine (ACh) acts through the regulation of AChE activity, which can play a key role in accelerating senile amyloid β-peptide (Aβ) plaque deposition. Therefore, inhibition of the AChE enzyme can be used as a key principle to prevent ACh depletion. The present study has been emphasized to explore both ligand- and structure-based 3D QSAR, HQSAR, pharmacophore, molecular docking and simulation studies on a set of structurally diverse inhibitors to optimize prime structural features responsible for selective binding to AChE, and vis-à-vis inhibiting enzyme activity. The pharmacophore model showed the importance of HB acceptor and donor, positive ionization and hydrophobic features of the molecule for effective binding. Structure-based docking and simulation studies adjudged the significance of features obtained from ligand-based 3D QSAR, CoMFA (Q2 = .608, [Formula: see text] = .700), CoMSIA (Q2 = .632, [Formula: see text] = .734), HQSAR (Q2 = .850, [Formula: see text] = .693) and pharmacophore (Q2 = .839, ROCscore = .769) models. The aim of the present study is to identify the essential structural and physicochemical profiles of molecules that can provide therapeutic benefits with less toxicity. Structurally diverse compounds have been used for the study, and the generated models showed the large applicability domain. SN - 1538-0254 UR - https://www.unboundmedicine.com/medline/citation/28417668/Exploring_molecular_structural_requirement_for_AChE_inhibition_through_multi_chemometric_and_dynamics_simulation_analyses_ L2 - https://www.tandfonline.com/doi/full/10.1080/07391102.2017.1320231 DB - PRIME DP - Unbound Medicine ER -