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首页> 外文期刊>Journal of medical Internet research >Drug Repositioning to Accelerate Drug Development Using Social Media Data: Computational Study on Parkinson Disease
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Drug Repositioning to Accelerate Drug Development Using Social Media Data: Computational Study on Parkinson Disease

机译:使用社交媒体数据进行药物重新定位以促进药物开发:帕金森病的计算研究

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BackgroundDue to the high cost and low success rate in new drug development, systematic drug repositioning methods are exploited to find new indications for existing drugs.ObjectiveWe sought to propose a new computational drug repositioning method to identify repositioning drugs for Parkinson disease (PD).MethodsWe developed a novel heterogeneous network mining repositioning method that constructed a 3-layer network of disease, drug, and adverse drug reaction and involved user-generated data from online health communities to identify potential candidate drugs for PD.ResultsWe identified 44 non-Parkinson drugs by using the proposed approach, with data collected from both pharmaceutical databases and online health communities. Based on the further literature analysis, we found literature evidence for 28 drugs.ConclusionsIn , the proposed heterogeneous network mining repositioning approach is promising for identifying repositioning candidates for PD. It shows that adverse drug reactions are potential intermediaries to reveal relationships between disease and drug.
机译:背景技术由于新药开发的成本高,成功率低,因此开发了系统的药物重定位方法来寻找现有药物的新适应症。目标我们试图提出一种新的计算药物重定位方法,以识别帕金森病(PD)的重定位药物。开发了一种新颖的异构网络挖掘重新定位方法,该方法构建了一个由疾病,药物和药物不良反应组成的3层网络,并使用了在线健康社区的用户生成的数据来识别潜在的PD候选药物。使用建议的方法,并从药品数据库和在线健康社区收集数据。在进一步的文献分析的基础上,我们找到了28种药物的文献证据。结论在本文中,提出的异构网络挖掘重定位方法有望用于确定PD的重定位候选对象。它表明药物不良反应是揭示疾病与药物之间关系的潜在中介。

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