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Gene Coexpression Network Comparison via Persistent Homology

机译:通过持久同源性进行基因共表达网络比较

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Persistent homology, a topological data analysis (TDA) method, is applied to microarray data sets. Although there are a few papers referring to TDA methods in microarray analysis, the usage of persistent homology in the comparison of several weighted gene coexpression networks (WGCN) was not employed before to the very best of our knowledge. We calculate the persistent homology of weighted networks constructed from 38 Arabidopsis microarray data sets to test the relevance and the success of this approach in distinguishing the stress factors. We quantify multiscale topological features of each network using persistent homology and apply a hierarchical clustering algorithm to the distance matrix whose entries are pairwise bottleneck distance between the networks. The immunoresponses to different stress factors are distinguishable by our method. The networks of similar immunoresponses are found to be close with respect to bottleneck distance indicating the similar topological features of WGCNs. This computationally efficient technique analyzing networks provides a quick test for advanced studies.
机译:持久同源性是一种拓扑数据分析(TDA)方法,适用于微阵列数据集。尽管有几篇论文涉及微阵列分析中的TDA方法,但据我们所知,以前在比较几个加权基因共表达网络(WGCN)中使用持久同源性的方法尚未得到应用。我们计算从38个拟南芥微阵列数据集构建的加权网络的持久同源性,以测试这种方法在区分压力因素方面的相关性和成功性。我们使用持久性同源性量化每个网络的多尺度拓扑特征,并将分层聚类算法应用于距离矩阵,该矩阵的条目为网络之间的成对瓶颈距离。通过我们的方法可以区分对不同应激因素的免疫反应。发现相似的免疫反应网络在瓶颈距离方面很接近,表明WGCN的拓扑特征相似。这种计算效率高的技术分析网络为高级研究提供了快速测试。

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