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Some Perspectives on Network Modeling in Therapeutic Target Prediction:

机译:治疗目标预测中的网络建模的一些观点:

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Drug target identification is of significant commercial interest to pharmaceutical companies, and there is a vast amount of research done related to the topic of therapeutic target identification. Interdisciplinary research in this area involves both the biological network community and the graph algorithms community. Key steps of a typical therapeutic target identification problem include synthesizing or inferring the complex network of interactions relevant to the disease, connecting this network to the disease-specific behavior, and predicting which components are key mediators of the behavior. All of these steps involve graph theoretical or graph algorithmic aspects. In this perspective, we provide modelling and algorithmic perspectives for therapeutic target identification and highlight a number of algorithmic advances, which have gotten relatively little attention so far, with the hope of strengthening the ties between these two research communities.
机译:药物靶标识别对制药公司具有重大的商业意义,并且与治疗靶标识别主题相关的研究很多。该领域的跨学科研究涉及生物网络社区和图算法社区。典型的治疗目标识别问题的关键步骤包括合成或推断与疾病相关的相互作用的复杂网络,将此网络与特定疾病的行为连接,并预测哪些成分是行为的关键介体。所有这些步骤都涉及图理论或图算法方面。在这种观点下,我们提供了用于治疗目标识别的建模和算法观点,并突出了许多算法方面的进展,到目前为止,这些进展很少受到关注,以期加强这两个研究团体之间的联系。

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