Laboratory of Bioorganic and Pharmaceutical Chemistry, Faculty of Pharmaceutical Sciences, Niigata University of Pharmacy and Medical and Life Sciences, 265-1 Higashijima, Akiha-ku, Niigata, 956-8603, Japan.
Laboratory of Bioorganic and Pharmaceutical Chemistry, Faculty of Pharmaceutical Sciences, Niigata University of Pharmacy and Medical and Life Sciences, 265-1 Higashijima, Akiha-ku, Niigata, 956-8603, Japan.
Biochem Biophys Res Commun. 2023 Oct 8;676:73-77. doi: 10.1016/j.bbrc.2023.07.026. Epub 2023 Jul 17.
Tyrosylprotein sulfotransferases (TPSTs) catalyze the transfer of a sulphonate moiety from 3'-Phosphoadenosine 5'-Phosphosulfate (PAPS) to the hydroxyl group of a tyrosine residue in substrate proteins. The positively charged substrate binding region of TPST homodimer interacts with acidic residues located in N-terminal region from the sulfated tyrosine in substrates. However, the sequence pattern in TPST substrate recognition remains unclear. Therefore, we aimed to determine the minimum recognition chain length required for tyrosine sulfation. We prepared His-tagged polypeptide, His-TPST1 and His-TPST2, form 43-370 of TPST1 and 43-377 of TPST2. Next, we prepared a series of synthesized ADYAE peptides and used a combination of reverse phase high-performance liquid chromatography (RP-HPLC) and mass spectrometric analysis to show that the tripeptide amino acid sequence, ADY, was sulfated by TPST1 and TPST2. Furthermore, we found that the acidic residue, located two residues C-terminal region from the tyrosine residue, may be involved in the TPST-induced sulfation regulation. The results in our study propose that proteins with the ADY sequence may be useful for searching the novel TPST tyrosine sulfated substrates.
酪氨酰蛋白硫酸转移酶(TPSTs)催化从 3'-磷酸腺苷 5'-磷酸硫酸(PAPS)向底物蛋白中天冬氨酸残基的羟基转移磺酸盐部分。TPST 同源二聚体的带正电荷的底物结合区域与位于底物中被硫酸化的酪氨酸的 N-末端区域的酸性残基相互作用。然而,TPST 底物识别的序列模式仍不清楚。因此,我们旨在确定酪氨酸硫酸化所需的最小识别链长度。我们制备了 His 标记的多肽 His-TPST1 和 His-TPST2,分别来自 TPST1 的 43-370 和 TPST2 的 43-377。接下来,我们制备了一系列合成的 ADYAE 肽,并使用反相高效液相色谱(RP-HPLC)和质谱分析的组合,表明 TPST1 和 TPST2 使三肽氨基酸序列 ADY 发生硫酸化。此外,我们发现位于酪氨酸残基 C 末端两个残基位置的酸性残基可能参与 TPST 诱导的硫酸化调节。我们的研究结果表明,具有 ADY 序列的蛋白质可能有助于搜索新型 TPST 酪氨酸硫酸化底物。