Department of Pharmaceutical Sciences, University of Ferrara, Via Fossato di Mortara 17-19, 44100 Ferrara, Italy.
J Med Chem. 2012 Jan 26;55(2):797-811. doi: 10.1021/jm201292w. Epub 2012 Jan 11.
Molecular modeling studies, including the comparative molecular field analysis (CoMFA) method, on 52 antagonists of the A(2B) adenosine receptor with known biological activity were performed to identify the three-dimensional features responsible for A(2B) adenosine receptor antagonist activity. On the basis of these and previous results on the potent antagonist effect of 8-pyrazolyl-xanthines at human A(2B)AR, a new series of compounds was synthesized and evaluated in binding studies against the human A(1), A(2A), A(3), and A(2B)ARs. A remarkable improvement in selectivity with respect to the previous series, maintaining the potency at human A(2B) receptor, was achieved, as exemplified by the 8-[3-(4-chloro-6-trifluoromethyl-1H-benzoimidazol-2-yl-methoxy)-1-methyl-1H-pyrazol-5-yl]-1,3-dipropyl-3,7-dihydro-purine-2,6-dione derivative 66: K(i) A(2B) = 9.4 nM, IC(50) hA(2B) = 26 nM hA(1)/hA(2B) = 269, hA(2A)/hA(2B) > 106, hA(3)/hA(2B) >106. This study also led to the identification of a series of pyrazole-xanthine compounds with a simplified structure, exemplified by 8-(3-hydroxy-1-methyl-1H-pyrazol-5-yl)-xanthine 80 displaying very high affinity at A(2B)AR with good selectivity over AR subtypes (K(i) = 4.0 nM, IC(50) hA(2B) = 20 nM hA(1)/hA(2B) = 183, hA(2A),hA(3)/hA(2B) > 250).
采用分子模拟研究方法,包括比较分子力场分析(CoMFA)方法,对 52 种具有已知生物学活性的 A(2B) 腺苷受体拮抗剂进行了研究,以确定与 A(2B) 腺苷受体拮抗活性相关的三维特征。基于这些研究结果以及先前关于强效拮抗剂 8-吡唑基黄嘌呤对人 A(2B)AR 的作用的结果,合成了一系列新的化合物,并在结合研究中评估了它们对人 A(1)、A(2A)、A(3)和 A(2B)AR 的抑制作用。与前一系列化合物相比,这些新化合物的选择性有了显著提高,同时保持了对人 A(2B)受体的效力,例如 8-[3-(4-氯-6-三氟甲基-1H-苯并咪唑-2-基-甲氧基)-1-甲基-1H-吡唑-5-基]-1,3-二丙基-3,7-二氢-嘌呤-2,6-二酮衍生物 66:K(i)A(2B) = 9.4 nM,IC(50)hA(2B) = 26 nM hA(1)/hA(2B) = 269,hA(2A)/hA(2B) > 106,hA(3)/hA(2B) > 106。这项研究还确定了一系列结构简化的吡唑-黄嘌呤化合物,例如 8-(3-羟基-1-甲基-1H-吡唑-5-基)-黄嘌呤 80,它对 A(2B)AR 具有很高的亲和力,对 AR 亚型具有良好的选择性(K(i) = 4.0 nM,IC(50)hA(2B) = 20 nM hA(1)/hA(2B) = 183,hA(2A)、hA(3)/hA(2B) > 250)。