Elucidating the binding mechanisms of GABA and Muscimol as an avenue to discover novel GABA-mimetic small molecules

被引:1
作者
Issahaku, Abdul Rashid [1 ,2 ]
Wilhelm, Anke [1 ]
Schutte-Smith, Marietjie [1 ]
Erasmus, Elizabeth [1 ]
Visser, Hendrik [1 ]
机构
[1] Univ Free State, Dept Chem, Bloemfontein, South Africa
[2] Univ Free State, Dept Chem, 205 Nelson Mandela Ave, ZA-9301 Bloemfontein, South Africa
关键词
GABA; Muscimol; GABA(A)-R; molecular dynamics simulation; pharmacophore modelling; ENTHALPY-ENTROPY COMPENSATION; RECEPTOR SUBUNIT GENES; FREE-ENERGY; DYNAMICS; ASSOCIATION; INHIBITORS; MODULATORS; SOFTWARE; ACCURACY; MUTATION;
D O I
10.1080/07391102.2024.2331088
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Gamma-aminobutyric acid (GABA) signaling is the principal inhibitory pathway in the central nervous system. It is critical in neuronal cell proliferation and fate determination. Any aberration in GABA inhibition results in psychiatric and neurological diseases. Thus, modulating GABAergic neurotransmission has become the basis of drug therapy for psychiatric and several neurological diseases. Though GABA and muscimol are classical inhibitors of GABA receptors, the search for novel inhibitors continues unabated. In this study, the binding mechanism of GABA and muscimol was elucidated and applied in the search for small molecule GABAergic inhibitors using comprehensive computational techniques. It was revealed that a high-affinity binding of GABA and muscimol was mediated by a water molecule involving alpha(1)Thr129 and then stabilized by strong interactions including salt bridges with beta(2)Glu155 and alpha(1)Arg66 amidst hydrogen bonds, pi-pi stacking, and pi -cation interactions with other residues. The binding of GABA and muscimol was also characterized by stability and deeper penetration into the hydrophobic core of the protein which resulted in conformational changes of the binding pocket and domain, by inducing correlated motions of the residues. Thermodynamics analysis showed GABA and muscimol exhibited total binding free energies of -19.85 +/- 8.83 Kcal/mol and -26.55 +/- 3.42 Kcal/mol, respectively. A pharmacophore model search, based on the energy contributions of implicating binding residues, resulted in the identification of ZINC68604167, ZINC19735138, ZINC04202466, ZINC00901626, and ZINC01532854 as potential GABA-mimetic compounds from metabolites and natural products libraries. This study has elucidated the binding mechanisms of GABA and muscimol and successfully applied in the identification of GABA-mimetic compounds.
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页数:16
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