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  2. Stereochemical influence of 4'-methyl substitutions on truncated 4'-thioadenosine derivatives: Impact on A3 adenosine receptor binding and antagonism

Stereochemical influence of 4'-methyl substitutions on truncated 4'-thioadenosine derivatives: Impact on A3 adenosine receptor binding and antagonism

  • Bioorg Chem. 2024 Dec:153:107901. doi: 10.1016/j.bioorg.2024.107901.
Minjae Kim 1 Siddhi D Naik 2 Dnyandev B Jarhad 1 Vikas R Aswar 1 Sushil Kumar Tripathi 1 Muhammad Arif Aslam 3 Joo Young Huh 4 Lak Shin Jeong 5
Affiliations

Affiliations

  • 1 Research Institute of Pharmaceutical Sciences, College of Pharmacy, Seoul National University, Seoul 08826, South Korea.
  • 2 Research Institute of Pharmaceutical Sciences, College of Pharmacy, Seoul National University, Seoul 08826, South Korea; Government College of Arts Science and Commerce, Khandola Marcela, Goa, India.
  • 3 College of Pharmacy, Chonnam National University, Gwangju 61186, Republic of Korea.
  • 4 College of Pharmacy, Chung-Ang University, Seoul 06974, Republic of Korea; Department of Global Innovative Drugs, The Graduate School of Chung-Ang University, Seoul 06974, Republic of Korea.
  • 5 Research Institute of Pharmaceutical Sciences, College of Pharmacy, Seoul National University, Seoul 08826, South Korea; Future Medicine Co., Ltd, 54 Changup-ro, Sujeong-gu, Seongnam, Gyeonggi-do 13449, Republic of Korea. Electronic address: lakjeong@snu.ac.kr.
Abstract

Herein, we investigated the stereochemical effects of 4'-methyl substitution on A3 Adenosine Receptor (A3AR) ligands by synthesizing and evaluating a series of truncated 4'-thioadenosine derivatives featuring 4'-α-methyl, 4'-β-methyl, and 4',4'-dimethyl substitutions. We successfully synthesized these derivatives, using the stereoselective addition of an organometallic reagent, KSAc-mediated sulfur cyclization, and Vorbrüggen condensation. Binding assays demonstrated that the 4'-β-methyl substitution conferred the highest affinity for A3AR, with compound 1 h exhibiting a Ki = 3.5 nM, followed by the 4',4'-dimethyl and 4'-α-methyl substitutions. Notably, despite the absence of the 5'-OH group, compound 1 h unexpectedly displayed partial agonism. Computational docking studies indicated that compound 1 h, the β-methyl derivative, adopted a South conformation and maintained strong interactions within the receptor, including a critical interaction with Thr94, a residue known to be notable for agonistic effects. Conversely, compound 2 h, the α-methyl derivative, also adopted a South conformation but resulted in a flattened structure that hindered interactions with Thr94 and Asn250. The dimethyl derivative 3 h exhibited steric clashes with Thr94, contributing to a reduction in binding affinity. However, the docking results for 3 h indicated a North conformation, suggesting that the change in sugar conformation due to the additional 4'-methyl group altered the angle between the α-methyl group and the sugar plane, enabling binding despite the increased steric bulk. These findings suggest that not only do the substituents and their stereochemistry influence receptor-ligand interactions, but the conformation and the resulting spatial orientation of the substituents also play a crucial role in modulating receptor-ligand interaction. This stereochemical insight offers a valuable framework for the design of new, selective, and potent A3AR ligands, potentially facilitating the development of novel therapeutics for A3AR-related diseases such as glaucoma, inflammation, and Cancer.

Keywords

4ʹ-Thionucleosides; A3AR; Adenosine Receptors; Agonist/antagonist; Conformation; Gauche strain; Molecular docking; Stereochemistry.

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