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基于合理设计的利托那韦类似物的构效关系:侧基立体化学、头基间距和骨架组成对与 CYP3A4 相互作用的影响。

Structure-Activity Relationships of Rationally Designed Ritonavir Analogues: Impact of Side-Group Stereochemistry, Headgroup Spacing, and Backbone Composition on the Interaction with CYP3A4.

出版信息

Biochemistry. 2019 Apr 16;58(15):2077-2087. doi: 10.1021/acs.biochem.9b00156. Epub 2019 Apr 3.

Abstract

In a continuing effort to identify structural attributes required for strong binding and potent inhibition of human drug-metabolizing CYP3A4, we designed ten ritonavir-like analogues differing in the side-group stereochemistry, backbone atomic composition, and headgroup spacing. All analogues had pyridine and tert-butyloxycarbonyl (Boc) as the heme-ligating head and tail groups, respectively, phenyl side groups, and either a methyl- or ethyl-pyridyl linker. Each linker subseries had S/ R, R/ S, R/ R, and S/S side-group conformers (4a-d and 4e-h, respectively), and one S/S stereoisomer with the backbone S-to-N-heteroatom substitution (6a and 6b). To elucidate structure-activity relationships, ligand-dependent changes in optical spectra, dissociation constant ( K), inhibitory potency (IC), thermostability, and heme ligation and reduction kinetics were analyzed. Comparison of the subseries and individual compounds showed that CYP3A4 only weakly discriminates between side-group configurations, associates more tightly with the pyridyl-ethyl-linker analogues, and strongly disfavors the N-containing backbone. K and IC for the pyridyl-ethyl R/ R conformer, 4g, were the lowest and close to those for ritonavir: 0.04 and 0.31 μM versus 0.02 and 0.13 μM, respectively. Determination of the X-ray structures of the inhibitory complexes was critical for experimental data interpretation, especially for the uniquely oriented 4a and 4e. Based on structural analysis, we conclude that, for this series of analogues, the ligand-mediated interactions near the heme are dominant and define the binding mode and that fine-tuning of these interactions as well as the backbone spacing could further improve the affinity and inhibitory strength.

摘要

为了确定与人类药物代谢 CYP3A4 强结合和强效抑制所需的结构属性,我们设计了十种利托那韦类似物,它们在侧基立体化学、骨架原子组成和头基间距方面存在差异。所有类似物的血红素连接头和尾基团分别为吡啶和叔丁氧基羰基(Boc)、苯侧基和甲基或乙基吡啶连接子。每个连接子亚系列都具有 S/R、R/S、R/R 和 S/S 侧基构象(分别为 4a-d 和 4e-h),以及一个 S/S 立体异构体,其骨架 S 到 N 杂原子取代(6a 和 6b)。为了阐明结构-活性关系,分析了配体依赖性光学光谱变化、解离常数(K)、抑制效力(IC)、热稳定性以及血红素结合和还原动力学。对亚系列和单个化合物的比较表明,CYP3A4 对侧基构型的区分能力较弱,与吡啶-乙基连接子类似物的结合更为紧密,并且强烈不利于含氮骨架。吡啶-乙基 R/R 构象 4g 的 K 和 IC 最低,接近利托那韦:0.04 和 0.31 μM 与 0.02 和 0.13 μM 相比。抑制复合物的 X 射线结构的确定对于实验数据的解释至关重要,尤其是对于独特定向的 4a 和 4e。基于结构分析,我们得出结论,对于该系列类似物,配体介导的血红素附近相互作用占主导地位并定义了结合模式,并且可以进一步微调这些相互作用以及骨架间距,以提高亲和力和抑制强度。

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