Molecular Basis for Binding and Subtype Selectivity of 1,4-Benzodiazepine Antagonist Ligands of the Cholecystokinin Receptor

التفاصيل البيبلوغرافية
العنوان: Molecular Basis for Binding and Subtype Selectivity of 1,4-Benzodiazepine Antagonist Ligands of the Cholecystokinin Receptor
المؤلفون: Andrew Orry, Erin E. Cawston, Mary Lou Augustine, Polo C.-H. Lam, Patrick M. Sexton, Ruben Abagyan, Eyup Akgün, Philip S. Portoghese, Maoqing Dong, Alicja M. Ball, Kaleeckal G. Harikumar, Laurence J. Miller
المصدر: Journal of Biological Chemistry. 287:18618-18635
بيانات النشر: Elsevier BV, 2012.
سنة النشر: 2012
مصطلحات موضوعية: Stereochemistry, Molecular Sequence Data, Allosteric regulation, Peptide binding, Ligands, digestive system, Biochemistry, Cholecystokinin receptor, Benzodiazepines, Chlorocebus aethiops, Animals, Amino Acid Sequence, Homology modeling, Receptor, Molecular Biology, Sequence Homology, Amino Acid, Ligand, Chemistry, digestive, oral, and skin physiology, Cell Biology, Small molecule, Docking (molecular), COS Cells, Receptors, Cholecystokinin, hormones, hormone substitutes, and hormone antagonists, Allosteric Site, Signal Transduction
الوصف: Allosteric binding pockets in peptide-binding G protein-coupled receptors create opportunities for the development of small molecule drugs with substantial benefits over orthosteric ligands. To gain insights into molecular determinants for this pocket within type 1 and 2 cholecystokinin receptors (CCK1R and CCK2R), we prepared a series of receptor constructs in which six distinct residues in TM2, -3, -6, and -7 were reversed. Two novel iodinated CCK1R- and CCK2R-selective 1,4-benzodiazepine antagonists, differing only in stereochemistry at C3, were used. When all six residues within CCK1R were mutated to corresponding CCK2R residues, benzodiazepine selectivity was reversed, yet peptide binding selectivity was unaffected. Detailed analysis, including observations of gain of function, demonstrated that residues 6.51, 6.52, and 7.39 were most important for binding the CCK1R-selective ligand, whereas residues 2.61 and 7.39 were most important for binding CCK2R-selective ligand, although the effect of substitution of residue 2.61 was likely indirect. Ligand-guided homology modeling was applied to wild type receptors and those reversing benzodiazepine binding selectivity. The models had high predictive power in enriching known receptor-selective ligands from related decoys, indicating a high degree of precision in pocket definition. The benzodiazepines docked in similar poses in both receptors, with C3 urea substituents pointing upward, whereas different stereochemistry at C3 directed the C5 phenyl rings and N1 methyl groups into opposite orientations. The geometry of the binding pockets and specific interactions predicted for ligand docking in these models provide a molecular framework for understanding ligand selectivity at these receptor subtypes. Furthermore, the strong predictive power of these models suggests their usefulness in the discovery of lead compounds and in drug development programs.
تدمد: 0021-9258
الوصول الحر: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::c63877d8d147a655586418b0eae3443cTest
https://doi.org/10.1074/jbc.m111.335646Test
حقوق: OPEN
رقم الانضمام: edsair.doi.dedup.....c63877d8d147a655586418b0eae3443c
قاعدة البيانات: OpenAIRE