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Article

Effect of S–Se Bioisosteric Exchange on Affinity and Intrinsic Efficacy of Novel N-acylhydrazone Derivatives at the Adenosine A2A Receptor

by
Júlia Galvez Bulhões Pedreira
1,2,†,
Rafaela Ribeiro Silva
3,†,
François G. Noël
3,4 and
Eliezer J. Barreiro
1,2,4,*
1
Laboratory of Evaluation and Synthesis of Bioactive Substances (LASSBio), Institute of Biomedical Sciences, Federal University of Rio de Janeiro (UFRJ), Rio de Janeiro 21944-971, Brazil
2
Graduate Program of Chemistry (PGQu), Chemistry Institute, Federal University of Rio de Janeiro (UFRJ), Rio de Janeiro 21941-909, Brazil
3
Laboratory of Biochemical and Molecular Pharmacology, Institute of Biomedical Sciences, Federal University of Rio de Janeiro (UFRJ), Rio de Janeiro 21944-971, Brazil
4
Nacional Institute of Science & Technology in Drugs and Medicines (INCT-INOFAR), Federal University of Rio de Janeiro (UFRJ), Rio de Janeiro 21944-971, Brazil
*
Author to whom correspondence should be addressed.
These authors contributed equally to this work.
Molecules 2021, 26(23), 7364; https://doi.org/10.3390/molecules26237364
Submission received: 23 October 2021 / Revised: 29 November 2021 / Accepted: 30 November 2021 / Published: 4 December 2021

Abstract

In this work, we evaluated the conformational effect promoted by the isosteric exchange of sulfur by selenium in the heteroaromatic ring of new N-acylhydrazone (NAH) derivatives (38, 13, 14), analogues of the cardioactive compounds LASSBio-294 (1) and LASSBio-785 (2). NMR spectra analysis demonstrated a chemical shift variation of the iminic Csp2 of NAH S/Se-isosters, suggesting a stronger intramolecular chalcogen interaction for Se-derivatives. To investigate the pharmacological profile of these compounds at the adenosine A2A receptor (A2AR), we performed a previously validated functional binding assay. As expected for bioisosteres, the isosteric-S/Se replacement affected neither the affinity nor the intrinsic efficacy of our NAH derivatives (18). However, the N-methylated compounds (2, 68) presented a weak partial agonist profile at A2AR, contrary to the non-methylated counterparts (1, 35), which appeared as weak inverse agonists. Additionally, retroisosterism between aromatic rings of NAH on S/Se-isosters mimicked the effect of the N-methylation on intrinsic efficacy at A2AR, while meta-substitution in the phenyl ring of the acyl moiety did not. This study showed that the conformational effect of NAH-N-methylation and aromatic rings retroisosterism changed the intrinsic efficacy on A2AR, indicating the S/Se-chalcogen effect to drive the conformational behavior of this series of NAH.
Keywords: N-acylhydrazone derivatives; A2A receptor; sulfur-selenium isosterism; conformational effect; chalcogen interaction; N-methylation effect N-acylhydrazone derivatives; A2A receptor; sulfur-selenium isosterism; conformational effect; chalcogen interaction; N-methylation effect

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MDPI and ACS Style

Pedreira, J.G.B.; Silva, R.R.; Noël, F.G.; Barreiro, E.J. Effect of S–Se Bioisosteric Exchange on Affinity and Intrinsic Efficacy of Novel N-acylhydrazone Derivatives at the Adenosine A2A Receptor. Molecules 2021, 26, 7364. https://doi.org/10.3390/molecules26237364

AMA Style

Pedreira JGB, Silva RR, Noël FG, Barreiro EJ. Effect of S–Se Bioisosteric Exchange on Affinity and Intrinsic Efficacy of Novel N-acylhydrazone Derivatives at the Adenosine A2A Receptor. Molecules. 2021; 26(23):7364. https://doi.org/10.3390/molecules26237364

Chicago/Turabian Style

Pedreira, Júlia Galvez Bulhões, Rafaela Ribeiro Silva, François G. Noël, and Eliezer J. Barreiro. 2021. "Effect of S–Se Bioisosteric Exchange on Affinity and Intrinsic Efficacy of Novel N-acylhydrazone Derivatives at the Adenosine A2A Receptor" Molecules 26, no. 23: 7364. https://doi.org/10.3390/molecules26237364

APA Style

Pedreira, J. G. B., Silva, R. R., Noël, F. G., & Barreiro, E. J. (2021). Effect of S–Se Bioisosteric Exchange on Affinity and Intrinsic Efficacy of Novel N-acylhydrazone Derivatives at the Adenosine A2A Receptor. Molecules, 26(23), 7364. https://doi.org/10.3390/molecules26237364

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