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首页> 外文期刊>Proteins: Structure, Function, and Genetics >Conformational dynamics of L-lysine, L-arginine, L-ornithine binding protein reveals ligand-dependent plasticity.
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Conformational dynamics of L-lysine, L-arginine, L-ornithine binding protein reveals ligand-dependent plasticity.

机译:L-赖氨酸,L-精氨酸,L-鸟氨酸结合蛋白的构象动力学揭示了配体依赖性的可塑性。

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The molecular basis of multiple ligand binding affinity for amino acids in periplasmic binding proteins (PBPs) and in the homologous domain for class C G-protein coupled receptors is an unsolved question. Here, using unrestrained molecular dynamic simulations, we studied the ligand binding mechanism present in the L-lysine, L-arginine, L-ornithine binding protein. We developed an analysis based on dihedral angles for the description of the conformational changes upon ligand binding. This analysis has an excellent correlation with each of the two main movements described by principal component analysis (PCA) and it's more convenient than RMSD measurements to describe the differences in the conformational ensembles observed. Furthermore, an analysis of hydrogen bonds showed specific interactions for each ligand studied as well as the ligand interaction with the aromatic residues Tyr-14 and Phe-52. Using uncharged histidine tautomers, these interactions are not observed. On the basis of these results, we propose a model in which hydrogen bond interactions place the ligand in the correct orientation to induce a cation-pi interaction with Tyr-14 and Phe-52 thereby stabilizing the closed state. Our results also show that this protein adopts slightly different closed conformations to make available specific hydrogen bond interactions for each ligand thus, allowing a single mechanism to attain multiple ligand specificity. These results shed light on the experimental evidence for ligand-dependent conformational plasticity not explained by the previous crystallographic data.
机译:在周质结合蛋白(PBPs)和C类G蛋白偶联受体的同源域中,氨基酸的多个配体结合亲和力的分子基础是一个尚未解决的问题。在这里,使用不受限制的分子动力学模拟,我们研究了L-赖氨酸,L-精氨酸,L-鸟氨酸结合蛋白中存在的配体结合机理。我们开发了基于二面角的分析,用于描述配体结合后的构象变化。该分析与主成分分析(PCA)所描述的两个主要运动中的每个都具有极好的相关性,并且比RMSD测量更方便地描述观察到的构象集合的差异。此外,对氢键的分析显示了所研究的每个配体的特异性相互作用以及与芳族残基Tyr-14和Phe-52的配体相互作用。使用不带电的组氨酸互变异构体,未观察到这些相互作用。基于这些结果,我们提出了一个模型,其中氢键相互作用将配体置于正确的方向上,以诱导与Tyr-14和Phe-52的阳离子-π相互作用,从而稳定了封闭状态。我们的结果还表明,该蛋白质采用略有不同的闭合构象,从而为每个配体提供特定的氢键相互作用,从而允许单一机制获得多种配体特异性。这些结果为以前的晶体学数据没有解释的配体依赖性构象可塑性的实验证据提供了启示。

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