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SHP-1对Src底物进行有效的去磷酸化作用。

Effective dephosphorylation of Src substrates by SHP-1.

作者信息

Frank Carsten, Burkhardt Carmen, Imhof Diana, Ringel Jens, Zschörnig Olaf, Wieligmann Karin, Zacharias Martin, Böhmer Frank-D

机构信息

Institute of Molecular Cell Biology, Medical Faculty, Faculty of Biology and Pharmacy, Friedrich Schiller University, D-07747 Jena, Germany.

出版信息

J Biol Chem. 2004 Mar 19;279(12):11375-83. doi: 10.1074/jbc.M309096200. Epub 2003 Dec 29.

DOI:10.1074/jbc.M309096200
PMID:14699166
Abstract

The protein-tyrosine phosphatase SHP-1 is a negative regulator of multiple signal transduction pathways. We observed that SHP-1 effectively antagonized Src-dependent phosphorylations in HEK293 cells. This occurred by dephosphorylation of Src substrates, because Src activity was unaffected in the presence of SHP-1. One reason for efficient dephosphorylation was activation of SHP-1 by Src. Recombinant SHP-1 had elevated activity subsequent to phosphorylation by Src in vitro, and SHP-1 variants with mutated phosphorylation sites in the C terminus, SHP-1 Y538F, and SHP-1 Y538F,Y566F were less active toward Src-generated phosphoproteins in intact cells. A second reason for efficient dephosphorylation is the substrate selectivity of SHP-1. Pull-down experiments with different GST-SHP-1 fusion proteins revealed efficient interaction of Src-generated phosphoproteins with the SHP-1 catalytic domain rather than with the SH2 domains. Phosphopeptides that correspond to good Src substrates were efficiently dephosphorylated by SHP-1 in vitro. Phosphorylated "optimal Src substrate" AEEEIpYGEFEA (where pY is phosphotyrosine) and a phosphopeptide corresponding to a recently identified Src phosphorylation site in p120 catenin, DDLDpY(296)GMMSD, were excellent SHP-1 substrates. Docking of these phosphopeptides into the catalytic domain of SHP-1 by molecular modeling was consistent with the biochemical data and explains the efficient interaction. Acidic residues N-terminal of the phosphotyrosine seem to be of major importance for efficient substrate interaction. Residues C-terminal of the phosphotyrosine probably contribute to the substrate selectivity of SHP-1. We propose that activation of SHP-1 by Src and complementary substrate specificities of SHP-1 and Src may lead to very transient Src signals in the presence of SHP-1.

摘要

蛋白酪氨酸磷酸酶SHP-1是多种信号转导途径的负调节因子。我们观察到SHP-1在HEK293细胞中能有效拮抗Src依赖性磷酸化。这是通过Src底物的去磷酸化实现的,因为在存在SHP-1的情况下Src活性不受影响。有效去磷酸化的一个原因是Src对SHP-1的激活。体外经Src磷酸化后,重组SHP-1的活性升高,而C末端磷酸化位点发生突变的SHP-1变体,即SHP-1 Y538F和SHP-1 Y538F、Y566F,对完整细胞中Src产生的磷蛋白的活性较低。有效去磷酸化的第二个原因是SHP-1的底物选择性。用不同的GST-SHP-1融合蛋白进行的下拉实验表明,Src产生的磷蛋白与SHP-1催化结构域而非SH2结构域有高效相互作用。对应于良好Src底物的磷酸肽在体外能被SHP-1有效去磷酸化。磷酸化的“最佳Src底物”AEEEIpYGEFEA(其中pY为磷酸酪氨酸)以及对应于最近在p120连环蛋白中鉴定出的Src磷酸化位点的磷酸肽DDLDpY(296)GMMSD,都是出色的SHP-1底物。通过分子建模将这些磷酸肽对接至SHP-1的催化结构域,这与生化数据一致,并解释了这种高效相互作用。磷酸酪氨酸N端的酸性残基似乎对有效的底物相互作用至关重要。磷酸酪氨酸C端的残基可能有助于SHP-1的底物选择性。我们提出,Src对SHP-1的激活以及SHP-1和Src互补的底物特异性可能导致在存在SHP-1的情况下Src信号非常短暂。

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