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与轴蛋白复合的β-连环蛋白和蛋白磷酸酶2A可调节腺瘤性息肉病大肠杆菌基因产物的GSK-3β依赖性磷酸化。

GSK-3beta-dependent phosphorylation of adenomatous polyposis coli gene product can be modulated by beta-catenin and protein phosphatase 2A complexed with Axin.

作者信息

Ikeda S, Kishida M, Matsuura Y, Usui H, Kikuchi A

机构信息

Department of Biochemistry, Hiroshima University School of Medicine, Japan.

出版信息

Oncogene. 2000 Jan 27;19(4):537-45. doi: 10.1038/sj.onc.1203359.

DOI:10.1038/sj.onc.1203359
PMID:10698523
Abstract

Axin forms a complex with adenomatous polyposis coli gene product (APC), glycogen synthase kinase-3beta (GSK-3beta), and beta-catenin through different binding sites and downregulates beta-catenin. GSK-3beta-dependent phosphorylation of APC-(1211-2075) which has the Axin-binding site was facilitated by Axin, but that of APC-(959-1338) which lacks the Axin-binding site was not. Axin-(298-506) or Axin-(298-832), which has the GSK-3beta- and beta-catenin- but not APC-binding sites, did not enhance GSK-3beta-dependent phosphorylation of either APC-(1211-2075) or APC-(959-1338). Furthermore, beta-catenin stimulated the phosphorylation of APC-(959-1338) and APC-(1211-2075) by GSK-3beta in the presence of Axin. Consistent with these in vitro observations, expression of beta-catenin or Axin in COS cells promoted an SDS gel band shift of APC. These results indicate that APC complexed with Axin is effectively phosphorylated by GSK-3beta and that beta-catenin may modulate this phosphorylation. In addition, the heterodimeric form of protein phosphatase 2A (PP2A) directly bound to Axin, and PP2A complexed with Axin dephosphorylated APC phosphorylated by GSK-3beta. Taken together, these results suggest that GSK-3beta-dependent phosphorylation of APC can be modulated by beta-catenin and PP2A complexed with Axin.

摘要

轴蛋白(Axin)通过不同的结合位点与腺瘤性息肉病大肠杆菌基因产物(APC)、糖原合酶激酶-3β(GSK-3β)和β-连环蛋白形成复合物,并下调β-连环蛋白。轴蛋白促进了具有轴蛋白结合位点的APC-(1211-2075)的GSK-3β依赖性磷酸化,但对缺乏轴蛋白结合位点的APC-(959-1338)则没有促进作用。具有GSK-3β和β-连环蛋白结合位点但没有APC结合位点的轴蛋白-(298-506)或轴蛋白-(298-832),既没有增强APC-(1211-2075)也没有增强APC-(959-1338)的GSK-3β依赖性磷酸化。此外,在有轴蛋白存在的情况下,β-连环蛋白刺激了GSK-3β对APC-(959-1338)和APC-(1211-2075)的磷酸化。与这些体外观察结果一致,β-连环蛋白或轴蛋白在COS细胞中的表达促进了APC的SDS凝胶电泳条带迁移。这些结果表明,与轴蛋白复合的APC被GSK-3β有效地磷酸化,并且β-连环蛋白可能调节这种磷酸化。此外,蛋白磷酸酶2A(PP2A)的异二聚体形式直接与轴蛋白结合,并且与轴蛋白复合的PP2A使被GSK-3β磷酸化的APC去磷酸化。综上所述,这些结果表明,APC的GSK-3β依赖性磷酸化可以被与轴蛋白复合的β-连环蛋白和PP2A调节。

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