首页> 外文期刊>Cell biochemistry and biophysics >Can We Rely on Computational Predictions To Correctly Identify Ligand Binding Sites on Novel Protein Drug Targets? Assessment of Binding Site Prediction Methods and a Protocol for Validation of Predicted Binding Sites
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Can We Rely on Computational Predictions To Correctly Identify Ligand Binding Sites on Novel Protein Drug Targets? Assessment of Binding Site Prediction Methods and a Protocol for Validation of Predicted Binding Sites

机译:我们可以依靠计算预测来正确识别新型蛋白药物靶标的配体结合位点吗? 绑定站点预测方法的评估和预测绑定站点验证的协议

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In the field of medicinal chemistry there is increasing focus on identifying key proteins whose biochemical functions can firmly be linked to serious diseases. Such proteins become targets for drug or inhibitor molecules that could treat or halt the disease through therapeutic action or by blocking the protein function respectively. The protein must be targeted at the relevant biologically active site for drug or inhibitor binding to be effective. As insufficient experimental data is available to confirm the biologically active binding site for novel protein targets, researchers often rely on computational prediction methods to identify binding sites. Presented herein is a short review on structure-based computational methods that (i) predict putative binding sites and (ii) assess the druggability of predicted binding sites on protein targets. This review briefly covers the principles upon which these methods are based, where they can be accessed and their reliability in identifying the correct binding site on a protein target. Based on this review, we believe that these methods are useful in predicting putative binding sites, but as they do not account for the dynamic nature of protein-ligand binding interactions, they cannot definitively identify the correct site from a ranked list of putative sites. To overcome this shortcoming, we strongly recommend using molecular docking to predict the most likely protein-ligand binding site(s) and mode(s), followed by molecular dynamics simulations and binding thermodynamics calculations to validate the docking results. This protocol provides a valuable platform for experimental and computational efforts to design novel drugs and inhibitors that target disease-related proteins.
机译:在药物化学领域,人们越来越关注识别其生化功能与严重疾病密切相关的关键蛋白质。这些蛋白质成为药物或抑制剂分子的靶点,它们可以通过治疗作用或分别阻断蛋白质功能来治疗或阻止疾病。蛋白质必须针对相关的生物活性部位,药物或抑制剂结合才能有效。由于没有足够的实验数据来确认新蛋白质靶点的生物活性结合位点,研究人员通常依靠计算预测方法来确定结合位点。本文简要回顾了基于结构的计算方法,这些方法(i)预测假定的结合位点,以及(ii)评估预测的结合位点对蛋白质靶点的可药物性。本文简要介绍了这些方法所依据的原理、它们的可访问性以及它们在识别蛋白质靶标上正确结合位点方面的可靠性。基于这篇综述,我们认为这些方法在预测假定的结合位点方面是有用的,但由于它们没有考虑蛋白质-配体结合相互作用的动态性质,它们无法从一系列假定位点中确定正确的位点。为了克服这个缺点,我们强烈建议使用分子对接来预测最可能的蛋白质-配体结合位点和模式,然后进行分子动力学模拟和结合热力学计算,以验证对接结果。该方案为设计针对疾病相关蛋白的新型药物和抑制剂的实验和计算工作提供了一个有价值的平台。

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