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肝细胞生长因子(Hgf)刺激低密度脂蛋白受体相关蛋白(Lrp)5/6磷酸化并促进经典Wnt信号传导。

Hepatocyte growth factor (Hgf) stimulates low density lipoprotein receptor-related protein (Lrp) 5/6 phosphorylation and promotes canonical Wnt signaling.

作者信息

Koraishy Farrukh M, Silva Cynthia, Mason Sherene, Wu Dianqing, Cantley Lloyd G

机构信息

From the Section of Nephrology, Department of Internal Medicine and

the Section of Pediatric Nephrology, Connecticut Children's Medical Center, Hartford, Connecticut 06106.

出版信息

J Biol Chem. 2014 May 16;289(20):14341-50. doi: 10.1074/jbc.M114.563213. Epub 2014 Apr 1.

Abstract

While Wnt and Hgf signaling pathways are known to regulate epithelial cell responses during injury and repair, whether they exhibit functional cross-talk is not well defined. Canonical Wnt signaling is initiated by the phosphorylation of the Lrp5/6 co-receptors. In the current study we demonstrate that Hgf stimulates Met and Gsk3-dependent and Wnt-independent phosphorylation of Lrp5/6 at three separate activation motifs in subconfluent, de-differentiated renal epithelial cells. Hgf treatment stimulates the selective association of active Gsk3 with Lrp5/6. In contrast, Akt-phosphorylated inactive Gsk3 is excluded from this association. Hgf stimulates β-catenin stabilization and nuclear accumulation and protects against epithelial cell apoptosis in an Lrp5/6-dependent fashion. In vivo, the increase in Lrp5/6 phosphorylation and β-catenin stabilization in the first 6-24 h after renal ischemic injury was significantly reduced in mice lacking Met receptor in the renal proximal tubule. Our results thus identify Hgf as an important transactivator of canonical Wnt signaling that is mediated by Met-stimulated, Gsk3-dependent Lrp5/6 phosphorylation.

摘要

虽然已知Wnt和Hgf信号通路在损伤和修复过程中调节上皮细胞反应,但它们是否存在功能性相互作用尚不清楚。经典Wnt信号通路由Lrp5/6共受体的磷酸化启动。在本研究中,我们证明Hgf在亚汇合、去分化的肾上皮细胞中的三个独立激活基序处刺激Lrp5/6的Met和Gsk3依赖性且不依赖Wnt的磷酸化。Hgf处理刺激活性Gsk3与Lrp5/6的选择性结合。相反,Akt磷酸化的无活性Gsk3被排除在这种结合之外。Hgf以Lrp5/6依赖性方式刺激β-连环蛋白的稳定和核积累,并保护上皮细胞免受凋亡。在体内,肾缺血损伤后最初6 - 24小时内Lrp5/6磷酸化和β-连环蛋白稳定的增加在肾近端小管中缺乏Met受体的小鼠中显著降低。因此,我们的结果确定Hgf是经典Wnt信号通路的重要反式激活因子,其由Met刺激、Gsk3依赖性Lrp5/6磷酸化介导。

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