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Connecting Biological Themes Using a Single Human Network of Gene Associations

机译:使用单个基因关联的人类网络连接生物学主题

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The accumulations of biological data in various knowledge domains (biological themes) provide rich resources for extracting deeper biological insights into biosystems. However, relations among these biological themes remain uncharacterized. Here, we present a systematic approach to the discovery of these relationships using a single human network of gene associations. We first constructed the network by incorporating the compiled human interactome and the predicted human associatome resulting from the Bayesian supervised integration of functional annotation data, model organism functional linkage data, and human functional linkage data. Using the network, we then performed the binomial distribution-based enrichment assessment to examine the high-level relationships among biological themes. Applications of the approach in biological processes from the Gene Ontology indicated that, although intra-process connections are of highly modular, distinct processes differ considerably in their abilities to interconnect with others. We also showed that such interconnectedness of processes cannot be explained by the modular constraints, but is largely due to the connectivity of their individual members to other processes. Moreover, we extended applications in other biological themes to find connections among regulatory profiles of transcription factors and microRNAs. These results demonstrated the feasibility of the approach, combining network biology with systematic information, to characterize high-level connections of any new biological themes.
机译:生物数据的各种知识领域的积累(生物主题)用于提取生物更深的见解生物系统提供了丰富的资源。然而,这些生物主题之间的关系仍然未鉴定。这里,我们目前使用的基因协会的一个人际网络对这些关系的发现一个系统的方法。我们首先通过将编译人类相互作用组和所得从贝叶斯监督功能注释数据,模式生物功能性连接数据的集成的预测的人类associatome,和人的功能性连接数据构建的网络。利用网络,我们再进行二项式配送为主的富集评估研究生物主题中的高层次的关系。从基因本体论生物过程的方法的应用指出,虽然进程内连接是高度模块化的,不同的过程中自己的能力显着不同与其他互连。我们还表明,流程,相互联系不能由模块化的约束来解释,但主要是因为他们的个人会员到其他进程的连接。此外,我们在推广其他生物的主题应用程序能够找到的转录因子和微RNA调控的配置文件之间的联系。这些结果证明了该方法的可行性,网络生物学相结合的系统信息,表征的任何新的生物主题的高层次的连接。

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