Interaction of tryptamine and ergoline compounds with threonine 196 in the ligand binding site of the 5-hydroxytryptamine6 receptor.
暂无分享,去创建一个
F. Monsma | A. Sleight | F. Boess | F J Monsma | A J Sleight | F G Boess | V Meyer | C Zwingelstein | C. Zwingelstein | V. Meyer
[1] D. Sibley,et al. Cloning, Characterization, and Chromosomal Localization of a Human 5‐HT6 Serotonin Receptor , 1996, Journal of neurochemistry.
[2] I. Matsuura,et al. A site-directed mutagenesis study of yeast calmodulin. , 1991, Journal of biochemistry.
[3] R. Leurs,et al. Site-directed mutagenesis of the histamine H1-receptor reveals a selective interaction of asparagine207 with subclasses of H1-receptor agonists. , 1994, Biochemical and biophysical research communications.
[4] L. Lanfumey,et al. Immuno-localization of serotonin 5-HT6 receptor-like material in the rat central nervous system , 1997, Brain Research.
[5] D. Nelson,et al. Species differences in 5-HT2A receptors: cloned pig and rhesus monkey 5-HT2A receptors reveal conserved transmembrane homology to the human rather than rat sequence. , 1995, Biochimica et biophysica acta.
[6] H Hayashi,et al. Site-directed mutagenesis of the histamine H1 receptor: roles of aspartic acid107, asparagine198 and threonine194. , 1994, Biochemical and biophysical research communications.
[7] M. Martres,et al. Quantitative RT‐PCR distribution of serotonin 5‐HT6 receptor mRNA in the central nervous system of control or 5,7‐dihydroxytryptamine‐treated rats , 1996, Synapse.
[8] D. Nelson,et al. Species differences in the pharmacology of the 5-hydroxytryptamine2 receptor: structurally specific differentiation by ergolines and tryptamines. , 1993, The Journal of pharmacology and experimental therapeutics.
[9] F. Monsma,et al. Effects of altered 5-ht6 expression in the rat: functional studies using antisense oligonucleotides , 1995, Behavioural Brain Research.
[10] I. Martin,et al. Molecular biology of 5-HT receptors , 1994, Neuropharmacology.
[11] K. Neve,et al. Contributions of Conserved Serine Residues to the Interactions of Ligands with Dopamine D2 Receptors , 1992, Journal of neurochemistry.
[12] D. Nelson,et al. N(1)-substituted ergolines and tryptamines show species differences for the agonist-labeled 5-HT2 receptor. , 1993, European journal of pharmacology.
[13] D. Sibley,et al. Binding of typical and atypical antipsychotic agents to 5-hydroxytryptamine-6 and 5-hydroxytryptamine-7 receptors. , 1994, The Journal of pharmacology and experimental therapeutics.
[14] F. Monsma,et al. Determination of the role of the 5-ht6 receptor in the rat brain: a study using antisense oligonucleotides. , 1995, The Journal of pharmacology and experimental therapeutics.
[15] L. Naylor,et al. Investigation of the Role of Conserved Serine Residues in the Long Form of the Rat D2 Dopamine Receptor Using Site‐Directed Mutagenesis , 1996, Journal of neurochemistry.
[16] P P Humphrey,et al. International Union of Pharmacology classification of receptors for 5-hydroxytryptamine (Serotonin). , 1994, Pharmacological reviews.
[17] S. Dahl,et al. Molecular modeling of serotonin, ketanserin, ritanserin and their 5-HT2C receptor interactions. , 1996, European journal of pharmacology.
[18] N. Pollock,et al. Serine mutations in transmembrane V of the dopamine D1 receptor affect ligand interactions and receptor activation. , 1992, The Journal of biological chemistry.
[19] F. Monsma,et al. Functional and Radioligand Binding Characterization of Rat 5-HT6 Receptors Stably Expressed in HEK293 Cells , 1997, Neuropharmacology.
[20] R. Loncharich,et al. Species variations in transmembrane region V of the 5-hydroxytryptamine type 2A receptor alter the structure-activity relationship of certain ergolines and tryptamines. , 1994, Molecular pharmacology.
[21] C. Fraser,et al. Site-directed mutagenesis of alpha 2A-adrenergic receptors: identification of amino acids involved in ligand binding and receptor activation by agonists. , 1991, Molecular pharmacology.
[22] Yi-Jun Guo,et al. Molecular basis for the interaction of histamine with the histamine H2 receptor. , 1992, The Journal of biological chemistry.
[23] H. Akil,et al. Site-directed mutagenesis of the human dopamine D2 receptor. , 1992, European journal of pharmacology.
[24] H. Lester,et al. The role of conserved aspartate and serine residues in ligand binding and in function of the 5‐HT1A receptor: A site‐directed mutation study , 1992, FEBS letters.
[25] C. Fraser,et al. In vitro mutagenesis and the search for structure-function relationships among G protein-coupled receptors. , 1992, The Biochemical journal.
[26] H Weinstein,et al. Contribution of a helix 5 locus to selectivity of hallucinogenic and nonhallucinogenic ligands for the human 5-hydroxytryptamine2A and 5-hydroxytryptamine2C receptors: direct and indirect effects on ligand affinity mediated by the same locus. , 1996, Molecular pharmacology.
[27] J. Baldwin,et al. Structure and function of receptors coupled to G proteins. , 1994, Current opinion in cell biology.
[28] H. Kao,et al. Site‐directed mutagenesis of a single residue changes the binding properties of the serotonin 5‐HT2 receptor from a human to a rat pharmacology , 1992, FEBS letters.
[29] D. Sibley,et al. Localization of serotonin subtype 6 receptor messenger RNA in the rat brain by in situ hybridization histochemistry , 1995, Neuroscience.
[30] C. Strader,et al. Identification of two serine residues involved in agonist activation of the beta-adrenergic receptor. , 1989, The Journal of biological chemistry.
[31] J. Schwartz,et al. A novel rat serotonin (5-HT6) receptor: molecular cloning, localization and stimulation of cAMP accumulation. , 1993, Biochemical and biophysical research communications.
[32] D. Perez,et al. The Unique Nature of the Serine Interactions for -Adrenergic Receptor Agonist Binding and Activation (*) , 1996, The Journal of Biological Chemistry.
[33] A. IJzerman,et al. A model of the serotonin 5-HT1A receptor: agonist and antagonist binding sites. , 1994, Drug design and discovery.
[34] D. Sibley,et al. Cloning and expression of a novel serotonin receptor with high affinity for tricyclic psychotropic drugs. , 1993, Molecular pharmacology.
[35] D Rodbard,et al. Ligand: a versatile computerized approach for characterization of ligand-binding systems. , 1980, Analytical biochemistry.
[36] J Hoflack,et al. Three-dimensional models of neurotransmitter G-binding protein-coupled receptors. , 1991, Molecular pharmacology.
[37] J. Hénichart,et al. Pharmacological and functional characterisation of the wild-type and site-directed mutants of the human H1 histamine receptor stably expressed in CHO cells. , 1995, Journal of receptor and signal transduction research.
[38] H Weinstein,et al. Signal transduction by a 5-HT2 receptor: a mechanistic hypothesis from molecular dynamics simulations of the three-dimensional model of the receptor complexed to ligands. , 1993, Journal of medicinal chemistry.
[39] A. Fersht. The hydrogen bond in molecular recognition , 1987 .