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Identification of miRNA-mRNA regulatory modules by exploring collective group relationships

机译:通过探索集体关系确定miRNA-mRNA调控模块

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microRNAs (miRNAs) play an essential role in the post-transcriptional gene regulation in plants and animals. They regulate a wide range of biological processes by targeting messenger RNAs (mRNAs). Evidence suggests that miRNAs and mRNAs interact collectively in gene regulatory networks. The collective relationships between groups of miRNAs and groups of mRNAs may be more readily interpreted than those between individual miRNAs and mRNAs, and thus are useful for gaining insight into gene regulation and cell functions. Several computational approaches have been developed to discover miRNA-mRNA regulatory modules (MMRMs) with a common aim to elucidate miRNA-mRNA regulatory relationships. However, most existing methods do not consider the collective relationships between a group of miRNAs and the group of targeted mRNAs in the process of discovering MMRMs. Our aim is to develop a framework to discover MMRMs and reveal miRNA-mRNA regulatory relationships from the heterogeneous expression data based on the collective relationships. We propose DIscovering COllective group RElationships (DICORE), an effective computational framework for revealing miRNA-mRNA regulatory relationships. We utilize the notation of collective group relationships to build the computational framework. The method computes the collaboration scores of the miRNAs and mRNAs on the basis of their interactions with mRNAs and miRNAs, respectively. Then it determines the groups of miRNAs and groups of mRNAs separately based on their respective collaboration scores. Next, it calculates the strength of the collective relationship between each pair of miRNA group and mRNA group using canonical correlation analysis, and the group pairs with significant canonical correlations are considered as the MMRMs. We applied this method to three gene expression datasets, and validated the computational discoveries. Analysis of the results demonstrates that a large portion of the regulatory relationships discovered by DICORE is consistent with the experimentally confirmed databases. Furthermore, it is observed that the top mRNAs that are regulated by the miRNAs in the identified MMRMs are highly relevant to the biological conditions of the given datasets. It is also shown that the MMRMs identified by DICORE are more biologically significant and functionally enriched.
机译:microRNA(miRNA)在植物和动物的转录后基因调控中起着至关重要的作用。它们通过靶向信使RNA(mRNA)来调节广泛的生物学过程。有证据表明,miRNA和mRNA在基因调控网络中共同相互作用。 miRNA组和mRNA组之间的集体关系比单个miRNA和mRNA之间的集体关系更容易解释,因此对于深入了解基因调控和细胞功能很有用。已经开发了几种计算方法来发现miRNA-mRNA调节模块(MMRM),其共同目的是阐明miRNA-mRNA调节关系。但是,大多数现有方法并未在发现MMRM的过程中考虑一组miRNA与一组靶向mRNA之间的集体关系。我们的目标是开发一个框架,以发现MMRM,并基于集体关系从异质表达数据中揭示miRNA-mRNA调控关系。我们提出了发现隐性组关系(DICORE)的方法,这是揭示miRNA-mRNA调控关系的有效计算框架。我们利用集体关系的概念来构建计算框架。该方法基于分别与miRNA和miRNA的相互作用来计算miRNA和mRNA的协作得分。然后根据它们各自的协作得分分别确定miRNA组和mRNA组。接下来,它使用规范相关分析计算每对miRNA组和mRNA组之间的集体关系强度,并将具有显着规范相关性的组对视为MMRM。我们将此方法应用于三个基因表达数据集,并验证了计算发现。结果分析表明,DICORE发现的大部分调节关系与实验确认的数据库一致。此外,观察到,在已识别的MMRM中,受miRNA调控的最顶端mRNA与给定数据集的生物学条件高度相关。还显示了由DICORE鉴定的MMRM具有更高的生物学意义和功能。

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