Chambers Kaitlin A, Abularrage Nile S, Scheck Rebecca A
Department of Chemistry , Tufts University , 62 Talbot Avenue , Medford , Massachusetts 02155 , United States.
Biochemistry. 2018 Jul 3;57(26):3790-3796. doi: 10.1021/acs.biochem.8b00534. Epub 2018 Jun 12.
Phosphothreonine lyases are bacterial effector proteins secreted into host cells to facilitate the infection process. This enzyme family catalyzes an irreversible elimination reaction that converts phosphothreonine or phosphoserine to dehydrobutyrine or dehydroalanine, respectively. Herein, we report a study of substrate selectivity for each of the four known phosphothreonine lyases. This was accomplished using a combination of mass spectrometry and enzyme kinetics assays for a series of phosphorylated peptides derived from the mitogen-activated protein kinase (MAPK) activation loop. These studies provide the first experimental evidence that VirA, a putative phosphothreonine lyase identified through homology, is indeed capable of catalyzing phosphate elimination. These studies further demonstrate that OspF is the most promiscuous phosphothreonine lyase, whereas SpvC is the most specific for the MAPK activation loop. Our studies reveal that phospholyases are dramatically more efficient at catalyzing elimination from phosphothreonine than from phosphoserine. Together, our data suggest that each enzyme likely has preferred substrates, either within the MAPK family or beyond. Fully understanding the extent of selectivity is key to understanding the impact of phosphothreonine lyases during bacterial infection and to exploiting their unique chemistry for a range of applications.
磷酸苏氨酸裂解酶是分泌到宿主细胞中以促进感染过程的细菌效应蛋白。该酶家族催化一种不可逆的消除反应,分别将磷酸苏氨酸或磷酸丝氨酸转化为脱氢丁酸或脱氢丙氨酸。在此,我们报告了对四种已知磷酸苏氨酸裂解酶各自底物选择性的研究。这是通过对一系列源自丝裂原活化蛋白激酶(MAPK)激活环的磷酸化肽进行质谱分析和酶动力学测定相结合来完成的。这些研究提供了首个实验证据,即通过同源性鉴定的假定磷酸苏氨酸裂解酶VirA确实能够催化磷酸消除反应。这些研究进一步表明,OspF是最具通用性的磷酸苏氨酸裂解酶,而SpvC对MAPK激活环具有最高的特异性。我们的研究表明,磷酸裂解酶催化从磷酸苏氨酸的消除反应比从磷酸丝氨酸的消除反应效率要高得多。总之,我们的数据表明,每种酶可能都有其偏好的底物,无论是在MAPK家族内还是家族外。充分了解选择性的程度是理解磷酸苏氨酸裂解酶在细菌感染过程中的影响以及利用其独特化学性质进行一系列应用的关键。