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双特异性磷酸酶的磷酸酪氨酸底物序列基序

Phosphotyrosine Substrate Sequence Motifs for Dual Specificity Phosphatases.

作者信息

Zhao Bryan M, Keasey Sarah L, Tropea Joseph E, Lountos George T, Dyas Beverly K, Cherry Scott, Raran-Kurussi Sreejith, Waugh David S, Ulrich Robert G

机构信息

Molecular and Translational Sciences Division, U.S. Army Medical Research Institute of Infectious Diseases, Frederick, MD, 21702, United States of America; The Geneva Foundation, Tacoma, WA, 98402, United States of America.

Molecular and Translational Sciences Division, U.S. Army Medical Research Institute of Infectious Diseases, Frederick, MD, 21702, United States of America.

出版信息

PLoS One. 2015 Aug 24;10(8):e0134984. doi: 10.1371/journal.pone.0134984. eCollection 2015.

Abstract

Protein tyrosine phosphatases dephosphorylate tyrosine residues of proteins, whereas, dual specificity phosphatases (DUSPs) are a subgroup of protein tyrosine phosphatases that dephosphorylate not only Tyr(P) residue, but also the Ser(P) and Thr(P) residues of proteins. The DUSPs are linked to the regulation of many cellular functions and signaling pathways. Though many cellular targets of DUSPs are known, the relationship between catalytic activity and substrate specificity is poorly defined. We investigated the interactions of peptide substrates with select DUSPs of four types: MAP kinases (DUSP1 and DUSP7), atypical (DUSP3, DUSP14, DUSP22 and DUSP27), viral (variola VH1), and Cdc25 (A-C). Phosphatase recognition sites were experimentally determined by measuring dephosphorylation of 6,218 microarrayed Tyr(P) peptides representing confirmed and theoretical phosphorylation motifs from the cellular proteome. A broad continuum of dephosphorylation was observed across the microarrayed peptide substrates for all phosphatases, suggesting a complex relationship between substrate sequence recognition and optimal activity. Further analysis of peptide dephosphorylation by hierarchical clustering indicated that DUSPs could be organized by substrate sequence motifs, and peptide-specificities by phylogenetic relationships among the catalytic domains. The most highly dephosphorylated peptides represented proteins from 29 cell-signaling pathways, greatly expanding the list of potential targets of DUSPs. These newly identified DUSP substrates will be important for examining structure-activity relationships with physiologically relevant targets.

摘要

蛋白酪氨酸磷酸酶使蛋白质的酪氨酸残基去磷酸化,而双特异性磷酸酶(DUSP)是蛋白酪氨酸磷酸酶的一个亚组,它不仅使蛋白质的酪氨酸磷酸化残基去磷酸化,还能使蛋白质的丝氨酸磷酸化残基和苏氨酸磷酸化残基去磷酸化。双特异性磷酸酶与许多细胞功能和信号通路的调节有关。尽管双特异性磷酸酶的许多细胞靶点是已知的,但催化活性与底物特异性之间的关系却不太明确。我们研究了肽底物与四种类型的特定双特异性磷酸酶的相互作用:丝裂原活化蛋白激酶(DUSP1和DUSP7)、非典型双特异性磷酸酶(DUSP3、DUSP14、DUSP22和DUSP27)、病毒双特异性磷酸酶(天花病毒VH1)和细胞分裂周期蛋白25(A - C)。通过测量6218种微阵列酪氨酸磷酸化肽的去磷酸化来实验确定磷酸酶识别位点,这些肽代表了来自细胞蛋白质组的已确认和理论上的磷酸化基序。在所有磷酸酶的微阵列肽底物上都观察到了广泛的去磷酸化连续谱,这表明底物序列识别与最佳活性之间存在复杂的关系。通过层次聚类对肽去磷酸化的进一步分析表明,双特异性磷酸酶可以根据底物序列基序进行分类,并且肽特异性与催化结构域之间的系统发育关系有关。去磷酸化程度最高的肽代表了来自29条细胞信号通路的蛋白质,极大地扩展了双特异性磷酸酶潜在靶点的列表。这些新鉴定的双特异性磷酸酶底物对于研究与生理相关靶点的构效关系将具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9970/4547750/043e31935707/pone.0134984.g001.jpg

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