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A Multistep Approach to Structure-Based Drug Design:Studying Ligand Binding at the Human Neutrophil Elastase

机译:基于结构的药物设计的多步骤方法:研究人嗜中性粒细胞弹性蛋白酶的配体结合

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In this study we show that a combination of different theoretical methods is a viable approach to calculate the binding affinities of new ligands for the human neutrophile elastase.This protease degrades elastin and likely aids neutrophils in fulfilling their immunological functions.Abnormally high human neutrophil elastase (HNE) levels are involved in several diseases;therefore,inhibitors of HNE are of interest as targets for drug design.A recent study has revealed that cinnamic acid and bornyl ester derivatives bind to HNE,but DELTA G~0 values from ligand docking results exhibited no correlation with those calculated from the IC_(50) values.To accurately compute binding affinities,we generated possible protein ligand complex structures by ligand docking calculations.For each of the ligands,the 30 most likely placements were used as starting points of nanosecond length molecular dynamics simulations.The binding free energies for these complex structures were estimated using a continuum solvent (MM-PBSA) approach.These results,along with structural data from the 'molecular dynamics runs,allowed the identification of a group of similar placements that serve as a model for the natural protein ligand complex structure.This structural model was used to perform thermodynamic integration (TI) calculations to obtain the relative binding free energies of similar ligands to HNE.The TI results were in quantitative agreement with the measured binding affinities.Thus,the presented approach can be used to generate a probable complex structure for known ligands to HNE and to use such a structure to calculate the effects of small ligand modifications on ligand binding,possibly leading to new inhibitors with improved binding affinities.
机译:在这项研究中,我们证明了多种不同的理论方法相结合是计算人嗜中性粒细胞弹性蛋白酶新配体结合亲和力的一种可行方法,该蛋白酶降解弹性蛋白,并可能帮助嗜中性粒细胞发挥其免疫功能。 HNE)水平与几种疾病有关;因此,HNE抑制剂成为药物设计的目标。最近的一项研究表明,肉桂酸和冰片酯衍生物与HNE结合,但显示出配体对接结果显示的DELTA G〜0值与根据IC_(50)值计算的结果无相关性。为了准确计算结合亲和力,我们通过配体对接计算生成了可能的蛋白质配体复合物结构。对于每个配体,将30个最可能的位置用作纳秒长度的起点分子动力学模拟。使用连续谱估计了这些复杂结构的结合自由能这些结果以及分子动力学实验得出的结构数据允许鉴定出一组类似的位置,这些位置可以作为天然蛋白质配体复合物结构的模型。使用了这种结构模型进行热力学积分(TI)计算以获得类似配体与HNE的相对结合自由能.TI结果与测得的结合亲和力在定量上吻合。因此,本文提出的方法可用于生成已知的可能的复杂结构并使用这种结构来计算小的配体修饰对配体结合的影响,可能会导致新的结合亲和力得到改善的抑制剂。

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