Structure−Activity Relationships of Adenine and Deazaadenine Derivatives as Ligands for Adenine Receptors, a New Purinergic Receptor Family

Journal of Medicinal Chemistry
2009.0

Abstract

Adenine derivatives bearing substituents in the 2-, N(6)-, 7-, 8-, and/or 9-position and a series of deazapurines were synthesized and investigated in [(3)H]adenine binding studies at the adenine receptor in rat brain cortical membrane preparations (rAde1R). Steep structure-activity relationships were observed. Substitution in the 8-position (amino, dimethylamino, piperidinyl, piperazinyl) or in the 9-position (2-morpholinoethyl) with basic residues or introduction of polar substituents at the 6-amino function (hydroxy, amino, acetyl) represented the best modifications. Functional evaluation of selected adenine derivatives in adenylate cyclase assays at 1321N1 astrocytoma cells stably expressing the rAde1R showed that all compounds investigated were agonists or partial agonists. A subset of compounds was additionally investigated in binding studies at human embryonic kidney (HEK293) cells, which also express a high-affinity adenine binding site. Structure-affinity relationships at the human cell line were similar to those at the rAde1R, but not identical. In particular, N(6)-acetyladenine (25, K(i) rat: 2.85 microM; K(i) human: 0.515 microM) and 8-aminoadenine (33, K(i) rat: 6.51 microM; K(i) human: 0.0341 microM) were much more potent at the human as compared to the rat binding site. The new AdeR ligands may serve as lead structures and contribute to the elucidation of the functions of the adenine receptor family.

Knowledge Graph

Similar Paper

Structure−Activity Relationships of Adenine and Deazaadenine Derivatives as Ligands for Adenine Receptors, a New Purinergic Receptor Family
Journal of Medicinal Chemistry 2009.0
8-Bromo-9-alkyl adenine derivatives as tools for developing new adenosine A2A and A2B receptors ligands
Bioorganic & Medicinal Chemistry 2009.0
Search for New Purine- and Ribose-Modified Adenosine Analogs as Selective Agonists and Antagonists at Adenosine Receptors
Journal of Medicinal Chemistry 1995.0
Adenosine receptor agonists: synthesis and biological evaluation of 1-deaza analogs of adenosine derivatives
Journal of Medicinal Chemistry 1988.0
Synthesis and Structure-Activity Relationships of Deazaxanthines: Analogs of Potent A1- and A2-Adenosine Receptor Antagonists
Journal of Medicinal Chemistry 1994.0
N9-Benzyl-substituted 1,3-dimethyl- and 1,3-dipropyl-pyrimido[2,1-f]purinediones: Synthesis and structure–activity relationships at adenosine A1 and A2A receptors
Bioorganic & Medicinal Chemistry 2007.0
Structure−Activity Relationships at Human and Rat A<sub>2B</sub> Adenosine Receptors of Xanthine Derivatives Substituted at the 1-, 3-, 7-, and 8-Positions
Journal of Medicinal Chemistry 2002.0
Design, synthesis and biological evaluation of 2-hydrazinyladenosine derivatives as A2A adenosine receptor ligands
European Journal of Medicinal Chemistry 2019.0
Synthesis and Biological Activity of New Potential Agonists for the Human Adenosine A<sub>2A</sub> Receptor
Journal of Medicinal Chemistry 2004.0
Purine derivatives as competitive inhibitors of human erythrocyte membrane phosphatidylinositol 4-kinase
Journal of Medicinal Chemistry 1990.0