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Evaluation of drug–human serum albumin binding interactions with support vector machine aided online automated docking

机译:支持向量机辅助在线自动对接评估药物-人血清白蛋白结合相互作用

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摘要

Motivation: Human serum albumin (HSA), the most abundant plasma protein is well known for its extraordinary binding capacity for both endogenous and exogenous substances, including a wide range of drugs. Interaction with the two principal binding sites of HSA in subdomain IIA (site 1) and in subdomain IIIA (site 2) controls the free, active concentration of a drug, provides a reservoir for a long duration of action and ultimately affects the ADME (absorption, distribution, metabolism, and excretion) profile. Due to the continuous demand to investigate HSA binding properties of novel drugs, drug candidates and drug-like compounds, a support vector machine (SVM) model was developed that efficiently predicts albumin binding. Our SVM model was integrated to a free, web-based prediction platform (http://albumin.althotas.com). Automated molecular docking calculations for prediction of complex geometry are also integrated into the web service. The platform enables the users (i) to predict if albumin binds the query ligand, (ii) to determine the probable ligand binding site (site 1 or site 2), (iii) to select the albumin X-ray structure which is complexed with the most similar ligand and (iv) to calculate complex geometry using molecular docking calculations. Our SVM model and the potential offered by the combined use of in silico calculation methods and experimental binding data is illustrated.
机译:动机:人血清白蛋白(HSA)是最丰富的血浆蛋白,以其对内源性和外源性物质(包括多种药物)的非凡结合能力而闻名。与亚结构域IIA(位点1)和亚结构域IIIA(位点2)中HSA的两个主要结合位点的相互作用控制了药物的自由活性浓度,提供了长效作用的贮库并最终影响了ADME(吸收) ,分布,新陈代谢和排泄)配置文件。由于不断需要研究新药,候选药物和类药物的HSA结合特性,因此开发了一种支持向量机(SVM)模型,可有效预测白蛋白结合。我们的SVM模型已集成到基于网络的免费预测平台(http://albumin.althotas.com)。用于预测复杂几何形状的自动分子对接计算也已集成到Web服务中。该平台使用户(i)预测白蛋白是否结合查询配体,(ii)确定可能的配体结合位点(位点1或位点2),(iii)选择与之复合的白蛋白X射线结构最相似的配体;(iv)使用分子对接计算来计算复杂的几何形状。说明了我们的SVM模型以及计算机计算方法和实验绑定数据结合使用所提供的潜力。

著录项

  • 来源
    《Bioinformatics》 |2011年第13期|p.1806-1813|共8页
  • 作者

    Eszter Hazai;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 01:12:43

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