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COMPUTING THERAPY FOR PRECISION MEDICINE: COLLABORATIVE FILTERING INTEGRATES AND PREDICTS MULTI-ENTITY INTERACTIONS

机译:精密医学计算治疗:协作滤波集成并预测多实体交互

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Biomedicine produces copious information it cannot fully exploit. Specifically, there is considerable need to integrate knowledge from disparate studies to discover connections across domains. Here, we used a Collaborative Filtering approach, inspired by online recommendation algorithms, in which non-negative matrix factorization (NMF) predicts interactions among chemicals, genes, and diseases only from pairwise information about their interactions. Our approach, applied to matrices derived from the Comparative Toxicogenomics Database, successfully recovered Chemical-Disease, Chemical-Gene, and Disease-Gene networks in 10-fold cross-validation experiments. Additionally, we could predict each of these interaction matrices from the other two. Integrating all three CTD interaction matrices with NMF led to good predictions of STRING, an independent, external network of protein-protein interactions. Finally, this approach could integrate the CTD and STRING interaction data to improve Chemical-Gene cross-validation performance significantly,and, in a time-stamped study, it predicted information added to CTD after a given date, using only data prior to that date. We conclude that collaborative filtering can integrate information across multiple types of biological entities, and that as a first step towards precision medicine it can compute drug repurposing hypotheses.
机译:Biomedicine产生了巨大的信息,无法完全利用。具体地,相当需要将来自不同研究的知识集成,以发现域中的连接。在这里,我们使用了由在线推荐算法的启发,其中非负矩阵分解(NMF)预测化学品,基因和疾病之间的相互作用,仅从关于它们的相互作用的成对信息预测相互作用。我们的方法适用于衍生自比较毒物学中的基质,成功地回收了10倍交叉验证实验中的化学疾病,化学基因和疾病 - 基因网络。另外,我们可以从另一个预测这些交互矩阵中的每一个。将所有三个CTD交互矩阵与NMF集成导致串的良好预测,蛋白质 - 蛋白质相互作用的独立外部网络。最后,这种方法可以集成CTD和串交互数据,显着提高化学基因交叉验证性能,并且在一个时间戳的研究中,它在给定日期之前使用该日期的数据预测在给定日期之后添加到CTD的信息。我们得出结论,协同滤波可以整合跨多种类型的生物实体的信息,并且作为精确药物的第一步,它可以计算药物修复假设的药物。

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