Faculty of Sciences, Amsterdam Institute for Molecules, Medicines and Systems, VU University Amsterdam, The Netherlands.
Br J Pharmacol. 2013 Sep;170(1):101-26. doi: 10.1111/bph.12248.
Chemogenomics focuses on the discovery of new connections between chemical and biological space leading to the discovery of new protein targets and biologically active molecules. G-protein coupled receptors (GPCRs) are a particularly interesting protein family for chemogenomics studies because there is an overwhelming amount of ligand binding affinity data available. The increasing number of aminergic GPCR crystal structures now for the first time allows the integration of chemogenomics studies with high-resolution structural analyses of GPCR-ligand complexes.
In this study, we have combined ligand affinity data, receptor mutagenesis studies, and amino acid sequence analyses to high-resolution structural analyses of (hist)aminergic GPCR-ligand interactions. This integrated structural chemogenomics analysis is used to more accurately describe the molecular and structural determinants of ligand affinity and selectivity in different key binding regions of the crystallized aminergic GPCRs, and histamine receptors in particular.
Our investigations highlight interesting correlations and differences between ligand similarity and ligand binding site similarity of different aminergic receptors. Apparent discrepancies can be explained by combining detailed analysis of crystallized or predicted protein-ligand binding modes, receptor mutation studies, and ligand structure-selectivity relationships that identify local differences in essential pharmacophore features in the ligand binding sites of different receptors.
We have performed structural chemogenomics studies that identify links between (hist)aminergic receptor ligands and their binding sites and binding modes. This knowledge can be used to identify structure-selectivity relationships that increase our understanding of ligand binding to (hist)aminergic receptors and hence can be used in future GPCR ligand discovery and design.
化学生物组学专注于发现化学和生物空间之间的新联系,从而发现新的蛋白质靶标和具有生物活性的分子。G 蛋白偶联受体(GPCR)是化学生物组学研究中特别有趣的蛋白质家族,因为有大量的配体结合亲和力数据可用。越来越多的胺能 GPCR 晶体结构现在首次允许将化学生物组学研究与 GPCR-配体复合物的高分辨率结构分析相结合。
在这项研究中,我们将配体亲和力数据、受体突变研究和氨基酸序列分析结合起来,对(组)胺能 GPCR-配体相互作用进行高分辨率结构分析。这种综合的结构化学生物组学分析用于更准确地描述不同关键结合区域中结晶化胺能 GPCR 和组胺受体中配体亲和力和选择性的分子和结构决定因素。
我们的研究强调了不同胺能受体的配体相似性和配体结合位点相似性之间的有趣相关性和差异。通过结合对不同受体的结晶或预测的蛋白-配体结合模式、受体突变研究以及鉴定配体结合位点中局部差异的配体结构选择性关系的详细分析,可以解释明显的差异。
我们进行了结构化学生物组学研究,确定了(组)胺能受体配体与其结合位点和结合模式之间的联系。这些知识可用于确定结构选择性关系,增加我们对(组)胺能受体配体结合的理解,从而可用于未来 GPCR 配体发现和设计。