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通过液相色谱-质谱联用结合生物亲和性评估对趋化因子受体CXCR3配体进行代谢谱分析。

Metabolic profiling of ligands for the chemokine receptor CXCR3 by liquid chromatography-mass spectrometry coupled to bioaffinity assessment.

作者信息

Mladic Marija, Scholten Danny J, Wijtmans Maikel, Falck David, Leurs Rob, Niessen Wilfried M A, Smit Martine J, Kool Jeroen

机构信息

Division of BioAnalytical Chemistry, Amsterdam Institute for Molecules Medicines and Systems, VU University Amsterdam, De Boelelaan 1083, 1081HV, Amsterdam, The Netherlands.

出版信息

Anal Bioanal Chem. 2015 Sep;407(23):7067-81. doi: 10.1007/s00216-015-8867-z. Epub 2015 Jul 12.

Abstract

Chemokine receptors belong to the class of G protein-coupled receptors and are important in the host defense against infections and inflammation. However, aberrant chemokine signaling is linked to different disorders such as cancer, central nervous system and immune disorders, and viral infections [Scholten DJ et al. (2012) Br J Pharmacol 165(6):1617-1643]. Modulating the chemokine receptor function provides new ways of targeting specific diseases. Therefore, discovery and development of drugs targeting chemokine receptors have received considerable attention from the pharmaceutical industry in the past decade. Along with that, the determination of bioactivities of individual metabolites derived from lead compounds towards chemokine receptors is crucial for drug selectivity, pharmacodynamics, and potential toxicity issues. Therefore, advanced analytical methodologies are in high demand. This study is aimed at the optimization of a new analytical method for metabolic profiling with parallel bioaffinity assessment of CXCR3 ligands of the azaquinazolinone and piperazinyl-piperidine class and their metabolites. The method is based on mass spectrometric (MS) identification after liquid chromatographic (LC) separation of metabolic mixtures. The bioaffinity assessment is performed "at-line" via high-resolution nanofractionation onto 96-well plates allowing direct integration of radioligand binding assays. This new method enables identification of metabolites from lead compounds with associated estimation of their individual bioaffinity. Moreover, the identification of the metabolite structures via accurate mass measurements and MS(2) allows the identification of liable metabolic "hotspots" for further lead optimization. The efficient combination of chemokine receptor ligand binding assays with analytical techniques, involving nanofractionation as linking technology, allows implementation of comprehensive metabolic profiling in an early phase of the drug discovery process.

摘要

趋化因子受体属于G蛋白偶联受体类别,在宿主抵御感染和炎症中发挥重要作用。然而,趋化因子信号异常与癌症、中枢神经系统疾病、免疫紊乱以及病毒感染等不同病症相关联[Scholten DJ等人(2012年),《英国药理学期刊》165(6):1617 - 1643]。调节趋化因子受体功能为靶向特定疾病提供了新途径。因此,过去十年间,靶向趋化因子受体的药物研发受到了制药行业的广泛关注。与此同时,确定先导化合物衍生的各个代谢物对趋化因子受体的生物活性,对于药物选择性、药效学以及潜在毒性问题至关重要。因此,对先进分析方法的需求很大。本研究旨在优化一种新的分析方法,用于对氮杂喹唑啉酮和哌嗪基 - 哌啶类及其代谢物的CXCR3配体进行代谢谱分析及并行生物亲和力评估。该方法基于液相色谱(LC)分离代谢混合物后进行质谱(MS)鉴定。生物亲和力评估通过在96孔板上进行高分辨率纳米分级“在线”进行,从而能够直接整合放射性配体结合测定。这种新方法能够鉴定先导化合物的代谢物,并对其各自的生物亲和力进行相关估计。此外,通过精确质量测量和MS(2)鉴定代谢物结构,有助于识别易发生代谢的“热点”,以进一步优化先导化合物。趋化因子受体配体结合测定与分析技术的有效结合,包括以纳米分级作为连接技术,使得在药物发现过程的早期阶段就能够实施全面的代谢谱分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/598c/4551560/3bad9259996f/216_2015_8867_Fig1_HTML.jpg

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