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CD44 Receptor Unfolding Enhances Binding by Freeing Basic Amino Acids to Contact Carbohydrate Ligand

机译:CD44受体解折叠通过释放碱性氨基酸与碳水化合物配体接触而增强结合

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摘要

The extracellular carbohydrate-binding domain of the Type I transmembrane receptor CD44 is known to undergo affinity switching, where change in conformation leads to enhanced binding of its carbohydrate ligand hyaluronan. Separate x-ray crystallographic and NMR experiments have led to competing explanations, with the former supporting minor conformational changes at the binding site and the latter a major order-to-disorder unfolding transition distant from the binding site. Here, all-atom explicit-solvent molecular dynamics studies employing adaptive biasing force sampling revealed a substantial favorable free-energy change associated with contact formation between the Arg41 side chain and hyaluronan at the binding site, independent of whether the distant site was ordered or disordered. Analogous computational experiments on Arg41Ala mutants showed loss of this favorable free-energy change, consistent with existing experimental data. More provocatively, the simulation data revealed the molecular mechanism by which the order-to-disorder transition enhances hyaluronan binding: in the disordered state, a number of basic residues gain sufficient conformational freedom—lacking in the ordered state—to spontaneously form side-chain contacts with hyaluronan. Mutation of these residues to Ala had been known to decrease binding affinity, but there had previously been no structural explanation, given their lack of proximity to the carbohydrate-binding site in existing structures of the complex.
机译:已知I型跨膜受体CD44的细胞外碳水化合物结合结构域经历亲和力转换,其中构象变化导致其碳水化合物配体透明质酸的结合增强。单独的X射线晶体学和NMR实验导致了相互竞争的解释,前者在结合位点支持较小的构象变化,而后者则是远离结合位点的主要的有序到无序展开过渡。在这里,采用自适应偏向力采样的全原子显式溶剂分子动力学研究表明,与结合位点上的Arg 41 侧链和透明质酸之间的接触形成相关的大量有利的自由能变化,独立于远端站点是有序的还是无序的。在Arg 41 Ala突变体上进行的模拟计算实验表明,这种有利的自由能变化已经丧失,与现有的实验数据一致。更具挑衅性的是,模拟数据揭示了分子间机制,通过这种机制,有序到无序的过渡增强了透明质酸的结合:在无序状态下,许多碱性残基获得了足够的构象自由度(无序状态)以自发形成侧链与透明质酸接触。已知将这些残基突变为Ala会降低结合亲和力,但是由于它们在复合物的现有结构中与碳水化合物结合位点缺乏接近性,因此以前没有结构解释。

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