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Systems Pharmacology: A Unified Framework for Prediction of Drug-Target Interactions

机译:系统药理学:预测药物-靶点相互作用的统一框架

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摘要

Background: Drug discovery is one important issue in medicine and pharmacology area. Traditional methods using target-based approach are usually time-consuming and ineffective. Recently, the problems are approached in a system-level view and therefore it is called systems pharmacology. This research field deals with the problems in drug discovery by integrating various kinds of biomedical and pharmacological data and using advanced computational methods. Ultimately, the problems are more effectively solved. One of the most important problem in systems pharmacology is prediction of drug-target interactions. Methods: In this review, we are going to summarize various computational methods for this problem. Results: More importantly, we formed a unified framework for the problem. In addition, to study human health and disease in a more systematically and effectively, we also presented an integrated scheme for a wider problem of prediction of disease-gene-drug associations. Conclusion: By presenting the unified framework and the integrated scheme, underlying computational methods for problems in systems pharmacology can be understood and complex relationships among diseases, genes and drugs can be identified effectively.
机译:背景:药物发现是医学和药理学领域的重要问题之一。使用基于目标的方法的传统方法通常既费时又无效。最近,从系统级的角度解决了这些问题,因此将其称为系统药理学。该研究领域通过整合各种生物医学和药理学数据并使用先进的计算方法来解决药物发现中的问题。最终,这些问题将得到更有效的解决。系统药理学中最重要的问题之一是药物-靶标相互作用的预测。方法:在这篇综述中,我们将总结针对该问题的各种计算方法。结果:更重要的是,我们为该问题形成了一个统一的框架。此外,为了更系统,更有效地研究人类健康和疾病,我们还提出了一个综合方案,用于更广泛地预测疾病-基因-药物关联。结论:通过提供统一的框架和集成的方案,可以了解系统药理学问题的基本计算方法,并可以有效地识别疾病,基因和药物之间的复杂关系。

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