Quantitative Analysis of the Structural Requirements for Blockade of the N-Methyl-d-aspartate Receptor at the Phencyclidine Binding Site

Journal of Medicinal Chemistry
1998.0

Abstract

Blockade of the N-methyl-D-aspartate receptor by uncompetitive antagonists has implications for symptomatic and neuroprotective therapy of various neuropsychiatric diseases. Since the three-dimensional (3D) structure of this ion channel is unknown, the structural requirements for uncompetitive inhibition were investigated by application of a three-step strategy: At first, Ki values were measured for a number of structurally diverse compounds at the phencyclidine (PCP) binding site in postmortem human frontal cortex. Second, a pharmacophore model was developed for this set of molecules employing a mathematical method called graph theory. The resulting pharmacophore provided a very good explanation for the ability of structurally diverse compounds to bind to the same binding site. Using the experimental data and the pharmacophore as a basis for the third step, a three-dimensional quantitative structure-activity relationship (3D-QSAR) applying comparative molecular field analysis (CoMFA) was performed. The QSAR proved to be highly consistent and showed good predictiveness for several additional molecules. The results give a deeper insight into the structural requirements for effective NMDA receptor antagonism and offer the opportunity for improved drug design. The study represents the first quantitative 3D-QSAR model for NMDA receptor blockade, and it comprises structurally very different molecules. That the alignment for a highly consistent CoMFA is based on an automated 3D pharmacophore analysis has important methodological implications.

Knowledge Graph

Similar Paper

Quantitative Analysis of the Structural Requirements for Blockade of the N-Methyl-<scp>d</scp>-aspartate Receptor at the Phencyclidine Binding Site
Journal of Medicinal Chemistry 1998.0
Comparative Molecular Field Analysis-Based Prediction of Drug Affinities at Recombinant D1A Dopamine Receptors
Journal of Medicinal Chemistry 1996.0
Generation of N-methyl-D-aspartate agonist and competitive antagonist pharmacophore models. Design and synthesis of phosphonoalkyl-substituted tetrahydroisoquinolines as novel antagonists
Journal of Medicinal Chemistry 1992.0
Three-Dimensional Quantitative Structure-Activity Relationships of Sulfonamide Endothelin Inhibitors
Journal of Medicinal Chemistry 1995.0
Derivation of a Pharmacophore Model for Anandamide Using Constrained Conformational Searching and Comparative Molecular Field Analysis
Journal of Medicinal Chemistry 1998.0
CoMFA-Based Prediction of Agonist Affinities at Recombinant D1 vs D2 Dopamine Receptors
Journal of Medicinal Chemistry 1998.0
Three-Dimensional Quantitative Structure−Activity Relationship Study of the Cannabimimetic (Aminoalkyl)indoles Using Comparative Molecular Field Analysis
Journal of Medicinal Chemistry 1998.0
Three-Dimensional Quantitative Structure−Activity Relationships of Cyclo-oxygenase-2 (COX-2) Inhibitors: A Comparative Molecular Field Analysis
Journal of Medicinal Chemistry 2001.0
Ligand-based design and synthesis of novel sodium channel blockers from a combined phenytoin–lidocaine pharmacophore
Bioorganic &amp; Medicinal Chemistry 2009.0
3D QSAR Analyses-Guided Rational Design of Novel Ligands for the (α4)<sub>2</sub>(β2)<sub>3</sub> Nicotinic Acetylcholine Receptor
Journal of Medicinal Chemistry 2003.0