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Nelic, D.

Publications and source records attributed to Nelic, D..

2 recordsLinked to original sources

Antagonistic properties of 4-(hexyloxy)benzoate derivatives and their N-methyl ammonium salts at muscarinic acetylcholine receptors

Muscarinic acetylcholine receptors (mAChRs) are key regulators of diverse physiological processes and longstanding therapeutic targets. Building on the long-acting antagonist KH-5, we synthesised and evaluated a series of 4-(hexyloxy)benzoate derivatives and their quaternary N-methylated analogues to explore how structural modifications influence receptor affinity and the duration of functional antagonism. Our structure-activity analysis revealed that introducing a rigid azabicyclo[2.2.2]octan-1-ium group boosted binding affinity (up to 250-fold compared to parental compounds) yet reduced the half-life of functional antagonism. In contrast, analogues with moderate flexibility maintained high potency while preserving longer receptor residence time. Computational docking and molecular dynamics (MD) simulations demonstrated that stable hydrogen bonding with residue N6.52 and salt-bridge formation with D3.32 were critical for sustained ligand binding to the receptor, with MD-derived metrics outperforming docking energies in predicting biological activity. Crucially, a positively charged nitrogen and a 4-hexyloxy substituent are essential features for high-affinity binding and prolonged antagonism. Shortening the alkyl chain resulted in a marked loss of affinity and abolished sustained activity. These findings underscore the need to balance molecular rigidity with conformational flexibility and charge distribution in the design of long-residence mAChR antagonists, offering a framework for further development of mAChR-targeted long-acting antagonists. HighlightsO_LINew analogues show up to 250x higher affinity at muscarinic receptors C_LIO_LIN6.52 H-bonding during MD predicts compound binding better than docking energies C_LIO_LICharged nitrogen and 4-hexyloxy are key to high affinity and sustained action C_LIO_LIRigid azabicyclo groups boost potency but shorten antagonism duration C_LIO_LIFlexible analogues balance potency with longer receptor residence time better C_LI

pharmacology and toxicology↗

Cholesterol differentially modulates the activity of opioid and muscarinic receptors via common non-canonical binding site

G protein-coupled receptors (GPCRs) are membrane proteins that represent the largest and most therapeutically targeted receptor class, accounting for 30% of currently marketed drugs. Two binding motifs for membrane cholesterol, the cholesterol recognition amino acid consensus (CRAC) domain and the cholesterol consensus motif (CCM), have been postulated. Using a simulation of the molecular dynamics of cholesterol association with the receptor, we predicted the binding of membrane cholesterol to non-canonical sites, distinct from CRAC and CCM, at muscarinic and opioid receptors. We identified a binding site common to muscarinic and opioid receptors at TM6, with arginine 6.35 as the major residue. Membrane cholesterol depletion mimics the effects of R6.35 mutations, confirming its role in receptor modulation. Targeting cholesterol-binding sites offers novel pharmacotherapeutic strategies, including tissue-specific sterol-based modulation. One sentence summaryThis study identifies a shared non-canonical cholesterol-binding site at TM6 in muscarinic and opioid receptors, with significant implications for drug development targeting tissue-specific GPCR modulation.

pharmacology and toxicology↗