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结构-动力学关系——在苗头化合物优化中被忽视的参数:环戊基胺类作为趋化因子受体 2 拮抗剂的案例。

Structure-kinetic relationships--an overlooked parameter in hit-to-lead optimization: a case of cyclopentylamines as chemokine receptor 2 antagonists.

机构信息

Division of Medicinal Chemistry, Leiden Academic Center for Drug Research, Leiden University , Post Office Box 9502, 2300 RA Leiden, Netherlands.

出版信息

J Med Chem. 2013 Oct 10;56(19):7706-14. doi: 10.1021/jm4011737. Epub 2013 Sep 27.

Abstract

Preclinical models of inflammatory diseases (e.g., neuropathic pain, rheumatoid arthritis, and multiple sclerosis) have pointed to a critical role of the chemokine receptor 2 (CCR2) and chemokine ligand 2 (CCL2). However, one of the biggest problems of high-affinity inhibitors of CCR2 is their lack of efficacy in clinical trials. We report a new approach for the design of high-affinity and long-residence-time CCR2 antagonists. We developed a new competition association assay for CCR2, which allows us to investigate the relation of the structure of the ligand and its receptor residence time [i.e., structure-kinetic relationship (SKR)] next to a traditional structure-affinity relationship (SAR). By applying combined knowledge of SAR and SKR, we were able to re-evaluate the hit-to-lead process of cyclopentylamines as CCR2 antagonists. Affinity-based optimization yielded compound 1 with good binding (Ki = 6.8 nM) but very short residence time (2.4 min). However, when the optimization was also based on residence time, the hit-to-lead process yielded compound 22a, a new high-affinity CCR2 antagonist (3.6 nM), with a residence time of 135 min.

摘要

炎症性疾病(如神经病理性疼痛、类风湿关节炎和多发性硬化症)的临床前模型表明趋化因子受体 2(CCR2)和趋化因子配体 2(CCL2)起着关键作用。然而,CCR2 高亲和力抑制剂的最大问题之一是它们在临床试验中缺乏疗效。我们报告了一种设计高亲和力和长停留时间 CCR2 拮抗剂的新方法。我们开发了一种新的 CCR2 竞争结合测定法,该方法使我们能够在传统的结构亲和力关系(SAR)旁边研究配体结构与其受体停留时间的关系(即结构动力学关系(SKR))。通过结合 SAR 和 SKR 的知识,我们能够重新评估环戊基胺作为 CCR2 拮抗剂的从命中发现先导的过程。基于亲和力的优化产生了具有良好结合(Ki = 6.8 nM)但停留时间很短(2.4 分钟)的化合物 1。然而,当优化也基于停留时间时,从命中发现先导的过程产生了具有高亲和力的新型 CCR2 拮抗剂 22a(3.6 nM),停留时间为 135 分钟。

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