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Network Reconstruction for the Identification of miRNA:mRNA Interaction Networks

机译:鉴定miRNA:mRNA相互作用网络的网络重建

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Network reconstruction from data is a data mining task which is receiving a significant attention due to its applicability in several domains. For example, it can be applied in social network analysis, where the goal is to identify connections among users and, thus, sub-communities. Another example can be found in computational biology, where the goal is to identify previously unknown relationships among biological entities and, thus, relevant interaction networks. Such task is usually solved by adopting methods for link prediction and for the identification of relevant sub-networks. Focusing on the biological domain, in and we proposed two methods for learning to combine the output of several link prediction algorithms and for the identification of biological significant interaction networks involving two important types of RNA molecules, i.e. microRNAs (miRNAs) and messenger RNAs (mRNAs). The relevance of this application comes from the importance of identifying (previously unknown) regulatory and cooperation activities for the understanding of the biological roles of miRNAs and mRNAs. In this paper, we review the contribution given by the combination of the proposed methods for network reconstruction and the solutions we adopt in order to meet specific challenges coming from the specific domain we consider.
机译:从数据进行网络重构是一项数据挖掘任务,由于其在多个领域中的适用性而受到了极大的关注。例如,它可以应用于社交网络分析,其目标是识别用户之间的联系,从而识别子社区。可以在计算生物学中找到另一个示例,其目标是识别生物学实体之间的先前未知关系,从而确定相关的交互网络。通常通过采用用于链路预测和用于识别相关子网的方法来解决该任务。着眼于生物学领域,我们提出了两种方法来学习以结合几种链接预测算法的输出,以及识别涉及两种重要类型的RNA分子(即microRNA(miRNA)和信使RNA(mRNA))的生物学显着相互作用网络。 )。此应用程序的相关性来自于确定(以前未知的)调节和合作活动以理解miRNA和mRNA的生物学作用的重要性。在本文中,我们回顾了所提出的网络重构方法与我们所采用的解决方案相结合所带来的贡献,以应对来自我们所考虑的特定领域的特定挑战。

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