Pritam Kumar Panda, Edward J Bertaccini
General anesthetics such as propofol and etomidate exert their clinical effects primarily through positive allosteric modulation of γ-aminobutyric acid type A receptors (GABAAR). Despite decades of research, the quantitative structure-activity relationships governing anesthetic binding remain incompletely characterized at the atomic level. Here, we employ rigorous alchemical free energy perturbation (FEP) calculations using a CHARMm GPU-accelerated protocol to compute relative binding free energies for a series of 13 propofol analogs at the wild-type GABAAR, as well as for the stereoisomeric pair of etomidate (R-etomidate vs S-etomidate). For propofol analogs at the wild-type receptor, computed relative binding free energies (ΔΔG) correlate with experimentally measured GABA EC 50 potentiation values, with propofol (2,6-diisopropylphenol) and disec-butylphenol predicted as the most potent analogs, consistent with experimental data (Pearson r = 0.85, 95% CI 0.50-0.96, p = 0.001; mean of three independent runs). For etomidate, FEP calculations correctly predict that R-etomidate binds approximately 1.8 kcal/mol more favorably than S-etomidate, corresponding to a ∼10-fold difference in potency consistent with the known stereoselective pharmacology of this agent. These results demonstrate that alchemical FEP calculations, implemented through a standardized computational protocol, can quantitatively rank-order anesthetic binding affinities and discriminate stereoisomeric preferences at Cys-loop receptor binding sites, providing a framework for rational design of next-generation anesthetic agents that is more quantitatively robust than simple molecular docking methodologies.