Kinoshita Eiji, Kinoshita-Kikuta Emiko, Koike Tohru
Department of Functional Molecular Science, Institute of Biomedical & Health Sciences, Hiroshima University, Kasumi 1-2-3, Hiroshima 734-8553, Japan.
Department of Functional Molecular Science, Institute of Biomedical & Health Sciences, Hiroshima University, Kasumi 1-2-3, Hiroshima 734-8553, Japan.
Biochim Biophys Acta. 2015 Jun;1854(6):601-8. doi: 10.1016/j.bbapap.2014.10.004. Epub 2014 Oct 12.
This review article describes analytical techniques based on the phosphate-binding tag molecule "Phos-tag", which is an alkoxide-bridged dinuclear metal complex with 1,3-bis(pyridin-2-ylmethylamino)propan-2-olate, for studying the protein phosphorylome. The dinuclear zinc(II) complex forms a stable 1:1 complex with a phosphate monoester dianion in an aqueous solution under conditions of neutral pH. By using a series of functional Phos-tag derivatives, our group has developed novel techniques that are useful in studies on kinomics and phosphoproteomics. Among the derivatives, a series of biotinylated Phos-tag derivatives have been used as molecular tools in applications such as Western blotting for comprehensive detection of phosphorylated proteins and in highly sensitive peptide microarray-based techniques for the detection of kinase activities in biological samples. The review also gives an outline of phosphate affinity electrophoresis, in which immobilized Phos-tag molecules in a general polyacrylamide gel are used to separate proteins and detect differences in their phosphorylation status. This technique permits quantitative analyses of multiple phosphorylation statuses of individual cellular proteins and their time-dependent changes. Conventional mass spectrometry-based shotgun techniques used in phosphoproteomics detect the phosphorylation modification of proteins in peptide fragments, whereas the Phos-tag electrophoresis technique permits the direct analysis of the phosphorylation status of full-length proteins. The technique therefore provides a greater understanding of the detailed properties of particular proteins involved in specific physiological and pathological events. This article is part of a Special Issue entitled: Medical Proteomics.
这篇综述文章描述了基于磷酸结合标签分子“Phos-tag”的分析技术,Phos-tag是一种与1,3-双(吡啶-2-基甲基氨基)丙-2-醇形成的醇盐桥联双核金属配合物,用于研究蛋白质磷酸化组。在中性pH条件下,双核锌(II)配合物在水溶液中与磷酸单酯二价阴离子形成稳定的1:1配合物。通过使用一系列功能性Phos-tag衍生物,我们团队开发了在激酶组学和磷酸蛋白质组学研究中有用的新技术。在这些衍生物中,一系列生物素化的Phos-tag衍生物已被用作分子工具,应用于诸如用于全面检测磷酸化蛋白质的蛋白质免疫印迹以及用于检测生物样品中激酶活性的基于高灵敏度肽微阵列的技术等应用中。该综述还概述了磷酸亲和电泳,其中在普通聚丙烯酰胺凝胶中固定的Phos-tag分子用于分离蛋白质并检测其磷酸化状态的差异。这项技术允许对单个细胞蛋白质的多种磷酸化状态及其时间依赖性变化进行定量分析。磷酸蛋白质组学中使用的传统基于质谱的鸟枪法技术检测肽片段中蛋白质的磷酸化修饰,而Phos-tag电泳技术允许直接分析全长蛋白质的磷酸化状态。因此,该技术能更深入地了解参与特定生理和病理事件的特定蛋白质的详细特性。本文是名为“医学蛋白质组学”的特刊的一部分。