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鉴定全球和配体特异性钙敏感受体激活机制。

Identification of Global and Ligand-Specific Calcium Sensing Receptor Activation Mechanisms.

机构信息

Drug Discovery Biology, Monash Institute of Pharmaceutical Sciences and Department of Pharmacology, Monash University, Parkville, Victoria, Australia (A.N.K., T.M.J., J.D., V.T.M., A.C., K.J.G., K.L.); Skaggs School of Pharmacy and Pharmaceutical Sciences, University of California, La Jolla, San Diego, California (I.K.); and School of Life and Environmental Sciences, Charles Perkins Centre (D17), University of Sydney, New South Wales, Australia (A.D.C.).

Drug Discovery Biology, Monash Institute of Pharmaceutical Sciences and Department of Pharmacology, Monash University, Parkville, Victoria, Australia (A.N.K., T.M.J., J.D., V.T.M., A.C., K.J.G., K.L.); Skaggs School of Pharmacy and Pharmaceutical Sciences, University of California, La Jolla, San Diego, California (I.K.); and School of Life and Environmental Sciences, Charles Perkins Centre (D17), University of Sydney, New South Wales, Australia (A.D.C.)

出版信息

Mol Pharmacol. 2018 Jun;93(6):619-630. doi: 10.1124/mol.118.112086. Epub 2018 Apr 10.

Abstract

Calcium sensing receptor (CaSR) positive allosteric modulators (PAMs) are therapeutically important. However, few are approved for clinical use, in part due to complexities in assessing allostery at a receptor where the endogenous agonist (extracellular calcium) is present in all biologic fluids. Such complexity impedes efforts to quantify and optimize allosteric drug parameters (affinity, cooperativity, and efficacy) that dictate PAM structure-activity relationships (SARs). Furthermore, an underappreciation of the structural mechanisms underlying CaSR activation hinders predictions of how PAM SAR relates to in vitro and in vivo activity. Herein, we combined site-directed mutagenesis and calcium mobilization assays with analytical pharmacology to compare modes of PAM binding, positive modulation, and agonism. We demonstrate that 3-(2-chlorophenyl)--((1)-1-(3-methoxyphenyl)ethyl)-1-propanamine (NPS R568) binds to a 7 transmembrane domain (7TM) cavity common to class C G protein-coupled receptors and used by ()-(-)--methyl--[3-[3-[trifluoromethylphenyl]propyl]-1-napthalenemethanamine (cinacalcet) and 1-benzothiazol-2-yl-1-(2,4-dimethylphenyl)-ethanol (AC265347); however, there are subtle distinctions in the contribution of select residues to the binding and transmission of cooperativity by PAMs. Furthermore, we reveal some common activation mechanisms used by different CaSR activators, but also demonstrate some differential contributions of residues within the 7TM bundle and extracellular loops to the efficacy of the PAM-agonist, AC265347, versus cooperativity. Finally, we show that PAMS potentiate the affinity of divalent cations. Our results support the existence of both global and ligand-specific CaSR activation mechanisms and reveal that allosteric agonism is mediated in part via distinct mechanisms to positive modulation.

摘要

钙敏感受体 (CaSR) 正变构调节剂 (PAM) 具有重要的治疗作用。然而,仅有少数 PAM 获得临床批准,部分原因是由于在存在内源性激动剂(细胞外钙)的受体上评估变构时存在复杂性。这种复杂性阻碍了量化和优化决定 PAM 结构活性关系 (SAR) 的变构药物参数(亲和力、协同性和效力)的努力。此外,对 CaSR 激活的结构机制认识不足,阻碍了预测 PAM SAR 与体外和体内活性的关系。在此,我们结合定点突变和钙动员测定与分析药理学来比较 PAM 结合、正变构调节和激动作用的模式。我们证明 3-(2-氯苯基)-((1)-1-(3-甲氧基苯基)乙基)-1-丙胺 (NPS R568) 结合到类 C G 蛋白偶联受体的 7 跨膜结构域 (7TM) 腔中,该腔被 ()-(-)--甲基--[3-[3-[三氟甲基]丙基]-1-萘基甲胺 (西那卡塞) 和 1-苯并噻唑-2-基-1-(2,4-二甲基苯基)-乙醇 (AC265347) 使用;然而,在 PAM 结合和传递协同性方面,选择残基的贡献存在细微差别。此外,我们揭示了不同 CaSR 激活剂使用的一些共同激活机制,但也证明了 7TM 束和细胞外环内的一些残基对 PAM-激动剂 AC265347 的效力和协同性的贡献存在差异。最后,我们表明 PAM 增强了二价阳离子的亲和力。我们的结果支持存在全球和配体特异性的 CaSR 激活机制,并表明变构激动作用部分通过不同的机制介导正变构调节。

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