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Ensemble- and Rigidity Theory-Based Perturbation Approach To Analyze Dynamic Allostery

机译:基于组合和刚性理论的扰动方法分析动态仿生

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Allostery describes the functional coupling between sites in biomolecules. Recently, the role of changes in protein dynamics for allosteric communication has been highlighted. A quantitative and predictive description of allostery is fundamental for understanding biological processes. Here, we integrate an ensemble-based perturbation approach with the analysis of biomolecular rigidity and flexibility to construct a model of dynamic allostery. Our model, by definition, excludes the possibility of conformational changes, evaluates static, not dynamic, properties of molecular systems, and describes allosteric effects due to ligand binding in terms of a novel free-energy measure. We validated our model on three distinct biomolecular systems: eglin c, protein tyrosine phosphatase 1B, and the lymphocyte function-associated antigen 1 domain. In all cases, it successfully identified key residues for signal transmission in very good agreement with the experiment. It correctly and quantitatively discriminated between positively or negatively cooperathe effects for one of the systems. Our model should be a promising tool for the rational discovery of novel allosteric drugs.
机译:Allostery描述了生物分子中位点之间的功能耦合。最近,突出了蛋白质动态变化的作用。对构象的定量和预测描述是理解生物过程的基础。在这里,我们通过分析生物分子刚度和灵活性来整合基于合奏的扰动方法,构建动态仿生模型。根据定义,我们的模型排除了构象变化的可能性,评估了分子系统的静态,而不是动态,性质,并描述了由于新的自由能量的配体结合引起的变构效果。我们在三个不同的生物分子系统中验证了我们的模型:Eglin C,蛋白酪氨酸磷酸酶1b和淋巴细胞功能相关抗原1结构域。在所有情况下,它成功地确定了与实验非常良好的信号传输的关键残留物。它对系统之一的积极性或负面的合作效应正确和定量地歧视。我们的模型应该是一个有前途的工具,用于对新型变构毒品的理性发现。

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