Department of Human Nutrition, Faculty of Human Sciences, Hiroshima Bunkyo University, Kabehigashi 1-2-1, Asakita-ku, Hiroshima 731-0295, Japan.
Department of Functional Molecular Science, Graduate School of Biomedical & Health Sciences, Hiroshima University, Kasumi 1-2-3, Minami-ku, Hiroshima 734-8553, Japan.
J Proteomics. 2022 Feb 10;252:104432. doi: 10.1016/j.jprot.2021.104432. Epub 2021 Nov 21.
Phos-tag is a functional molecule that selectively captures a phosphate monoester dianion in neutral aqueous solutions. The affinity of Phos-tag for phosphate monoester dianions is more than 10,000 times greater than that for other anions present in living organisms, such as carboxylic acid anions. We have developed and applied useful techniques for phosphoproteomics based on Phos-tag. This review describes the history of Phos-tag development and outlines three main technologies that have been put to practical use. The first is a technique to separate and concentrate phosphopeptides and phosphoproteins using a Phos-tag derivative with a hydrophilic chromatography carrier (Phos-tag polymer beads). The second is a technology to detect phosphopeptides and phosphoproteins on various arrays using Phos-tag biotin. The third is a technique to separate and detect phosphoproteins by electrophoresis using Phos-tag acrylamide. We hope that these three technologies will make a significant contribution to phosphoproteomics and, ultimately, to life science research. SIGNIFICANCE: The authors found that a dinuclear metal complex of 1,3-bis[bis(pyridin-2-ylmethyl)-amino]propan-2-olato acted as a novel phosphate-binding tag nanomolecule, Phos-tag, in an aqueous solution under near physiological conditions. The metal complex having a vacancy on two metal ions is suitable for the access of a phosphomonoester dianion (R-OPO) as a bridging ligand. A dinuclear zinc(II) complex (Zn-Phos-tag) strongly binds to a p-nitrophenyl phosphate dianion (K = 2.5 × 10 M) at a neutral pH. The anion selectivity indexes against SO, CHCOO, Cl, and the bisphenyl phosphate monoanion at 25 °C are 5.2 × 10, 1.6 × 10, 8.0 × 10, and > 2 × 10, respectively. We have been involved in developing technologies by using the Phos-tag molecule and its derivatives to permit the analysis of phosphorylated biomolecules. To date, Phos-tag technology has contributed to the development of several procedures for phosphoproteomics, including a phosphate-affinity chromatography technique for the separation and enrichment of phosphopeptides and phosphoproteins, a wide variety of microarray/on-chip techniques for the detection of protein phosphorylation, and a phosphate-affinity electrophoresis technique for the detection of shifts in the mobilities of phosphoproteins. In this review article, the authors introduce the impact of Phos-tag-based technological advances for phosphoproteomics.
Phos-tag 是一种功能分子,可在中性水溶液中选择性捕获磷酸单酯二阴离子。Phos-tag 对磷酸单酯二阴离子的亲和力比生物体中存在的其他阴离子(如羧酸阴离子)高 10,000 多倍。我们已经开发并应用了基于 Phos-tag 的有用的磷酸蛋白质组学技术。这篇综述描述了 Phos-tag 发展的历史,并概述了已实际应用的三种主要技术。第一种技术是使用带有亲水性色谱载体(Phos-tag 聚合物珠)的 Phos-tag 衍生物分离和浓缩磷酸肽和磷酸蛋白的技术。第二种技术是使用 Phos-tag 生物素在各种阵列上检测磷酸肽和磷酸蛋白的技术。第三种技术是使用 Phos-tag 丙烯酰胺通过电泳分离和检测磷酸蛋白的技术。我们希望这三种技术将对磷酸蛋白质组学,最终对生命科学研究做出重大贡献。意义:作者发现,在近生理条件下,1,3-双[双(吡啶-2-基甲基)-氨基]丙烷-2-醇的双核金属配合物在水溶液中充当新型的磷酸结合标签纳米分子,Phos-tag。具有两个金属离子空位的金属配合物适合作为桥联配体进入磷酸单酯二阴离子(R-OPO)。双核锌(II)配合物(Zn-Phos-tag)在中性 pH 下强烈结合对硝基苯磷酸二阴离子(K=2.5×10 M)。在 25°C 下,对 SO、CHCOO、Cl 和双苯磷酸单阴离子的阴离子选择性指数分别为 5.2×10、1.6×10、8.0×10 和>2×10。我们一直在参与开发使用 Phos-tag 分子及其衍生物的技术,以允许分析磷酸化的生物分子。迄今为止,Phos-tag 技术为磷酸蛋白质组学的几个程序的发展做出了贡献,包括用于分离和富集磷酸肽和磷酸蛋白的磷酸亲和层析技术、用于检测蛋白质磷酸化的各种微阵列/芯片技术以及用于检测磷酸蛋白迁移率变化的磷酸亲和电泳技术。在这篇综述文章中,作者介绍了基于 Phos-tag 的技术进步对磷酸蛋白质组学的影响。