Laboratory of Cancer Biology and Genetics, ‡Collaborative Protein Technology Resource, Laboratory of Cell Biology, and §Office of Science and Technology Partnerships, Center for Cancer Research, National Cancer Institute , Bethesda, Maryland 20892, United States.
J Med Chem. 2014 Jun 26;57(12):5356-69. doi: 10.1021/jm500417b. Epub 2014 Jun 6.
Protein kinase C (PKC), a validated therapeutic target for cancer chemotherapy, provides a paradigm for assessing structure-activity relations, where ligand binding has multiple consequences for a target. For PKC, ligand binding controls not only PKC activation and multiple phosphorylations but also subcellular localization, affecting subsequent signaling. Using a capillary isoelectric focusing immunoassay system, we could visualize a high resolution isoelectric focusing signature of PKCδ upon stimulation by ligands of the phorbol ester and bryostatin classes. Derivatives that possessed different physicochemical characteristics and induced different patterns of biological response generated different signatures. Consistent with different patterns of PKCδ localization as one factor linked to these different signatures, we found different signatures for activated PKCδ from the nuclear and non-nuclear fractions. We conclude that the capillary isoelectric focusing immunoassay system may provide a window into the integrated consequences of ligand binding and thus afford a powerful platform for compound development.
蛋白激酶 C(PKC)是癌症化疗的一个经过验证的治疗靶点,为评估结构-活性关系提供了范例,其中配体结合对靶标有多种影响。对于 PKC,配体结合不仅控制 PKC 的激活和多种磷酸化,还控制细胞内定位,影响后续的信号转导。使用毛细管等电聚焦免疫分析系统,我们可以在 PKCδ 受到佛波酯和海鞘素类配体刺激时观察到高分辨率的等电聚焦特征。具有不同物理化学特性并诱导不同生物学反应模式的衍生物产生不同的特征。与这些不同特征相关的是 PKCδ 定位的不同模式,我们发现来自核和非核部分的激活 PKCδ 具有不同的特征。我们得出结论,毛细管等电聚焦免疫分析系统可以为配体结合的综合结果提供一个窗口,从而为化合物开发提供一个强大的平台。