Department of Biochemistry, Molecular Biology, and Cell Biology, Northwestern University, Evanston, IL 60208, USA.
Blood. 2010 Jun 10;115(23):4843-52. doi: 10.1182/blood-2010-01-261396. Epub 2010 Mar 2.
As the principal component of the membrane skeleton, spectrin confers integrity and flexibility to red cell membranes. Although this network involves many interactions, the most common hemolytic anemia mutations that disrupt erythrocyte morphology affect the spectrin tetramerization domains. Although much is known clinically about the resulting conditions (hereditary elliptocytosis and pyropoikilocytosis), the detailed structural basis for spectrin tetramerization and its disruption by hereditary anemia mutations remains elusive. Thus, to provide further insights into spectrin assembly and tetramer site mutations, a crystal structure of the spectrin tetramerization domain complex has been determined. Architecturally, this complex shows striking resemblance to multirepeat spectrin fragments, with the interacting tetramer site region forming a central, composite repeat. This structure identifies conformational changes in alpha-spectrin that occur upon binding to beta-spectrin, and it reports the first structure of the beta-spectrin tetramerization domain. Analysis of the interaction surfaces indicates an extensive interface dominated by hydrophobic contacts and supplemented by electrostatic complementarity. Analysis of evolutionarily conserved residues suggests additional surfaces that may form important interactions. Finally, mapping of hereditary anemia-related mutations onto the structure demonstrate that most, but not all, local hereditary anemia mutations map to the interacting domains. The potential molecular effects of these mutations are described.
作为膜骨架的主要成分,血影蛋白赋予红细胞膜完整性和柔韧性。尽管这个网络涉及许多相互作用,但最常见的破坏红细胞形态的溶血性贫血突变影响血影蛋白四聚体化结构域。尽管临床上对由此产生的病症(遗传性椭圆形红细胞增多症和热异形红细胞增多症)有很多了解,但血影蛋白四聚化及其遗传性贫血突变破坏的详细结构基础仍然难以捉摸。因此,为了提供进一步了解血影蛋白组装和四聚体位点突变的信息,已经确定了血影蛋白四聚体化结构域复合物的晶体结构。从结构上看,这个复合物与多重复血影蛋白片段非常相似,相互作用的四聚体位点区域形成一个中央复合重复。该结构确定了与结合到β-血影蛋白结合时发生的α-血影蛋白构象变化,并报告了β-血影蛋白四聚体化结构域的第一个结构。对相互作用表面的分析表明,一个广泛的界面主要由疏水接触和静电互补来补充。对进化保守残基的分析表明,可能形成重要相互作用的其他表面。最后,将遗传性贫血相关突变映射到结构上表明,大多数(但不是全部)局部遗传性贫血突变映射到相互作用的结构域。描述了这些突变的潜在分子效应。