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Molecular design principles underlying βstrand swapping in the adhesive dimerization of cadherins

机译:钙粘着蛋白的粘合剂二聚作用中基于β链交换的分子设计原理

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Cell adhesion by classical cadherins is mediated by dimerization of their EC1 domains through the 'swapping' of N-terminalβ-strands. We use molecular simulations, measurements of binding affinities and X-ray crystallography to provide a detailed picture of the structural and energetic factors that control the adhesive dimerization of cadherins. We show that strand swapping in EC1 is driven by conformational strain in cadherin monomers that arises from the anchoring of their short N-terminal strand at one end by the conserved Trp2 and at the other by ligation to Ca~(2+) ions. We also demonstrate that a conserved proline-proline motif functions to avoid the formation of an overly tight interface where affinity differences between different cadherins, crucial at the cellular level, are lost. We use these findings to design site-directed mutations that transform a monomeric EC2-EC3 domain cadherin construct into a strand-swapped dimer.
机译:经典钙粘着蛋白的细胞粘附是通过其EC端结构域的二聚化(通过N端β链的“交换”来介导的)。我们使用分子模拟,结合亲和力的测量和X射线晶体学来提供控制钙粘着蛋白的粘合剂二聚化的结构和高能因素的详细图片。我们表明EC1中的链交换是由钙粘着蛋白单体中的构象应变驱动的,该构象应变是由它们的短N末端链在一端由保守的Trp2锚定而在另一端由与Ca〜(2+)离子的连接锚定而引起的。我们还证明了保守的脯氨酸-脯氨酸基序功能可避免形成过于紧密的界面,而在该界面上失去了在细胞水平上至关重要的不同钙粘着蛋白之间的亲和力差异。我们使用这些发现来设计定点突变,将单体EC2-EC3域钙粘蛋白构建体转化为链交换的二聚体。

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