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人E-钙黏蛋白结构域1和2的晶体结构,以及在黏附机制背景下与其他钙黏蛋白的比较。

The crystal structure of human E-cadherin domains 1 and 2, and comparison with other cadherins in the context of adhesion mechanism.

作者信息

Parisini Emilio, Higgins Jonathan M G, Liu Jin-huan, Brenner Michael B, Wang Jia-huai

机构信息

Department of Medical Oncology, Dana-Farber Cancer Institute, Harvard Medical School, Boston, MA 02115, USA.

出版信息

J Mol Biol. 2007 Oct 19;373(2):401-11. doi: 10.1016/j.jmb.2007.08.011. Epub 2007 Aug 21.

Abstract

Cell adhesion mediated by type I cadherins involves homophilic "trans" interactions that are thought to be brought about by a strand exchange mechanism involving the N-terminal extracellular domain. Here, we present the high-resolution crystal structure of the N-terminal two domains of human E-cadherin. Comparison of this structure with other type I cadherin structures reveals features that are likely to be critical to facilitate dimerization by strand exchange as well as dimer flexibility. We integrate this structural knowledge to provide a model for type I cadherin adhesive interactions. Intra-molecular docking of the conserved N-terminal "adhesion arm" into the acceptor pocket in monomeric E-cadherin appears largely identical to inter-molecular docking of the adhesion arm in adhesive trans dimers. A strained conformation of the adhesion arm in the monomer, however, may create an equilibrium between "open" and "closed" forms that primes the cadherin for formation of adhesive interactions, which are then stabilized by additional dimer-specific contacts. By contrast, in type II cadherins, strain in the adhesion arm appears absent and a much larger surface area is involved in trans adhesion, which may compensate the activation energy required to peel off the intra-molecularly docked arm. It seems that evolution has selected slightly different adhesion mechanisms for type I and type II cadherins.

摘要

由I型钙黏着蛋白介导的细胞黏附涉及同源性“反式”相互作用,这种相互作用被认为是由一种涉及N端胞外结构域的链交换机制所导致的。在此,我们展示了人E-钙黏着蛋白N端两个结构域的高分辨率晶体结构。将该结构与其他I型钙黏着蛋白结构进行比较,揭示了可能对通过链交换促进二聚化以及二聚体灵活性至关重要的特征。我们整合这些结构知识,以提供一个I型钙黏着蛋白黏附相互作用的模型。保守的N端“黏附臂”在单体E-钙黏着蛋白中向受体口袋的分子内对接,在很大程度上与黏附性反式二聚体中黏附臂的分子间对接相同。然而,单体中黏附臂的一种应变构象可能会在“开放”和“闭合”形式之间建立一种平衡,从而使钙黏着蛋白为形成黏附相互作用做好准备,随后通过额外的二聚体特异性接触使其稳定。相比之下,在II型钙黏着蛋白中,黏附臂似乎不存在应变,并且在反式黏附中涉及更大的表面积,这可能补偿了将分子内对接的臂剥离所需的活化能。看来进化为I型和II型钙黏着蛋白选择了略有不同的黏附机制。

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