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通过其低密度脂蛋白受体(LDLR)结构域进行的低密度脂蛋白受体相关蛋白6(LRP6)二聚化,是强大的经典Wnt信号通路激活所必需的。

LRP6 dimerization through its LDLR domain is required for robust canonical Wnt pathway activation.

作者信息

Chen Jinxiao, Yan Hongwei, Ren Dan-Ni, Yin Yan, Li Zhi, He Qingqing, Wo Da, Ho Margaret Su-Chun, Chen Yihan, Liu Zhongmin, Yang Jianhua, Liu Shangfeng, Zhu Weidong

机构信息

Tongji University School of Medicine, Shanghai, China.

Clinical and Translational Research Center Shanghai East Hospital, Key Laboratory of Arrhythmias of Ministry of Education, Shanghai, China.

出版信息

Cell Signal. 2014 May;26(5):1068-74. doi: 10.1016/j.cellsig.2013.12.020. Epub 2014 Jan 8.

Abstract

Canonical Wnt/β-catenin signaling pathway plays important roles in multiple aspects of cellular responses in development and diseases. It is currently thought that Wnt receptor Frizzled (Frz) exists separately to Wnt coreceptors LRP5 and LRP6 (LRP5/6), and that Wnt-Frz-LRP5/6 triple complex formation bridged by Wnt ligand is needed for canonical pathway activation. We recently showed that Frz and LRP5/6 interact with each other in the absence of Wnt ligand binding and this interaction maintains the Frz-LRP5/6 complex in an inactive state. Here, we further show that Wnt ligand stimulation induces conformational change of the Frz-LRP6 complex and leads to hexamer formation containing the core LDLR domain-mediated LRP6 homodimer that is stabilized by two pairs of Wnt3a and Frz8, that is, Wnt3a-Frz8-LRP6-LRP6-Frz8-Wnt3a. This LDLR-mediated LRP6 dimerization is essential for robust canonical Wnt pathway activation. Our study thus suggests a previously unrecognized mode of receptor interaction in Wnt signal initiation.

摘要

经典Wnt/β-连环蛋白信号通路在发育和疾病中的细胞反应的多个方面发挥着重要作用。目前认为,Wnt受体卷曲蛋白(Frz)与Wnt共受体低密度脂蛋白受体相关蛋白5和6(LRP5/6)是分开存在的,并且经典途径的激活需要由Wnt配体桥接形成Wnt-Frz-LRP5/6三聚体复合物。我们最近发现,在没有Wnt配体结合的情况下,Frz和LRP5/6相互作用,这种相互作用使Frz-LRP5/6复合物保持在无活性状态。在此,我们进一步表明,Wnt配体刺激诱导Frz-LRP6复合物的构象变化,并导致形成包含由核心低密度脂蛋白受体(LDLR)结构域介导的LRP6同型二聚体的六聚体,该同型二聚体由两对Wnt3a和Frz8稳定,即Wnt3a-Frz8-LRP6-LRP6-Frz8-Wnt3a。这种由LDLR介导的LRP6二聚化对于强大的经典Wnt途径激活至关重要。因此,我们的研究揭示了Wnt信号起始过程中一种以前未被认识的受体相互作用模式。

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