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Design and Synthesis of Specific Probes for Human 5-HT4 Receptor Dimerization Studies
Author(s) -
JeanLouis Soulier,
Olivier Russo,
Mireille Giner,
Lucie Rivail,
Magali Berthouze,
Sandrine Ongeri,
Bernard Maigret,
Rodolphe Fischmeister,
Frank Lezoualc’h,
Sames Sicsic,
Isabelle BerqueBestel
Publication year - 2005
Publication title -
journal of medicinal chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.01
H-Index - 261
eISSN - 1520-4804
pISSN - 0022-2623
DOI - 10.1021/jm050234z
Subject(s) - bivalent (engine) , chemistry , receptor , g protein coupled receptor , 5 ht4 receptor , stereochemistry , docking (animal) , dimer , biophysics , biochemistry , agonist , biology , medicine , nursing , organic chemistry , metal
Recently, human 5-HT4 receptors have been demonstrated to form constitutive dimers in living cells. To evaluate the role of dimerization on the 5-HT4 receptor function, we investigated the conception and the synthesis of bivalent molecules able to influence the dimerization process. Their conception is based on a model of the 5-HT4 receptor dimer derived from protein/protein docking experiments. These bivalent ligands are constituted by two ML10302 units, a specific 5-HT4 ligand, linked through a spacer of different sizes and natures. These synthesized bivalent ligands were evaluated in binding assays and cyclic AMP production on the 5-HT4(e/g) receptor isoform stably transfected in C6 glial cells. Our data showed that bivalent ligands conserved a similar affinity compared to the basal ML10302 unit. Nevertheless, according to the nature and the size of the spacer, the pharmacological profile of ML10302 is more or less conserved. In view of the interest of bivalent ligands for investigating the GPCR dimerization process, these 5-HT4 specific bivalent ligands constitute valuable pharmacological tools for the study of 5-HT4 receptor dimerization.

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