E-cadherin的n-糖基化状态通过组织不同的含有β-catenin和γ-catenin的AJs来控制细胞骨架动力学。

Basem T Jamal, Mihai Nita-Lazar, Zhennan Gao, Bakr Amin, Janice Walker, Maria A Kukuruzinska
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引用次数: 23

摘要

e -钙粘蛋白的n -糖基化已被证明可以抑制细胞间的粘附。具体来说,我们最近的研究提供了证据,证明E-cadherin n -糖基化的减少促进了稳定成分,vinculin和丝氨酸/苏氨酸蛋白磷酸酶2A (PP2A)向粘附连接(AJs)的募集,并增强了AJs与肌动蛋白细胞骨架的关联。在这里,我们研究了e -钙粘蛋白的n -糖基化如何影响AJs的分子组织及其细胞骨架相互作用的细节。利用低糖基化E-cadherin变体V13,我们发现V13/β-catenin复合物优先与PP2A和微管运动蛋白dynein相互作用。这与微管相关蛋白tau的去磷酸化有关,表明PP2A与含有v13的AJs的增加关联促进了它们与微管的粘附。另一方面,V13/γ-catenin复合物更多地与血管蛋白相关,表明它们介导了AJs与肌动蛋白细胞骨架的相互作用。n -糖基化驱动AJs分子组织的变化具有显著的生理意义,因为将V13转染到既缺乏成熟AJs又缺乏紧密连接(TJs)的A253癌细胞中,比野生型E-cadherin更大程度上促进了稳定AJs的形成,并增强了TJs的功能。这些研究首次提供了E-cadherin的n-糖基化如何通过不同的含有β-catenin和γ-catenin的支架的组装来驱动AJ组成的变化的机制见解,这些支架影响与不同细胞骨架成分的相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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N-glycosylation status of E-cadherin controls cytoskeletal dynamics through the organization of distinct β-catenin- and γ-catenin-containing AJs.
N-glycosylation of E-cadherin has been shown to inhibit cell-cell adhesion. Specifically, our recent studies have provided evidence that the reduction of E-cadherin N-glycosylation promoted the recruitment of stabilizing components, vinculin and serine/threonine protein phosphatase 2A (PP2A), to adherens junctions (AJs) and enhanced the association of AJs with the actin cytoskeleton. Here, we examined the details of how N-glycosylation of E-cadherin affected the molecular organization of AJs and their cytoskeletal interactions. Using the hypoglycosylated E-cadherin variant, V13, we show that V13/β-catenin complexes preferentially interacted with PP2A and with the microtubule motor protein dynein. This correlated with dephosphorylation of the microtubule-associated protein tau, suggesting that increased association of PP2A with V13-containing AJs promoted their tethering to microtubules. On the other hand V13/γ-catenin complexes associated more with vinculin, suggesting that they mediated the interaction of AJs with the actin cytoskeleton. N-glycosylation driven changes in the molecular organization of AJs were physiologically significant because transfection of V13 into A253 cancer cells, lacking both mature AJs and tight junctions (TJs), promoted the formation of stable AJs and enhanced the function of TJs to a greater extent than wild-type E-cadherin. These studies provide the first mechanistic insights into how N-glycosylation of E-cadherin drives changes in AJ composition through the assembly of distinct β-catenin- and γ-catenin-containing scaffolds that impact the interaction with different cytoskeletal components.
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