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Exploiting Literature-derived Knowledge and Semantics to Identify Potential Prostate Cancer Drugs

机译:利用文学中的知识和语义学来识别潜在的前列腺癌药物

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In this study, we report on the performance of an automated approach to discovery of potential prostate cancer drugs from the biomedical literature. We used the semantic relationships in SemMedDB, a database of structured knowledge extracted from all MEDLINE citations using SemRep, to extract potential relationships using knowledge of cancer drugs pathways. Two cancer drugs pathway schemas were constructed using these relationships extracted from SemMedDB. Through both pathway schemas, we found drugs already used for prostate cancer therapy and drugs not currently listed as the prostate cancer medications. Our study demonstrates that the appropriate linking of relevant structured semantic relationships stored in SemMedDB can support the discovery of potential prostate cancer drugs.
机译:在这项研究中,我们报告了从生物医学文献中发现潜在前列腺癌药物的自动化方法的性能。我们使用了SemMedDB中的语义关系,SemMedDB是使用SemRep从所有MEDLINE引用中提取的结构化知识的数据库,用于利用癌症药物途径的知识来提取潜在的关系。使用从SemMedDB中提取的这些关系构建了两种癌症药物途径方案。通过这两种途径,我们发现已经用于前列腺癌治疗的药物和当前未列为前列腺癌药物的药物。我们的研究表明,存储在SemMedDB中的相关结构化语义关系的适当链接可以支持潜在前列腺癌药物的发现。

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