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scdNet: a computational tool for single-cell differential network analysis

机译:scdNet:用于单细胞差分网络分析的计算工具

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Single-cell RNA sequencing (scRNA-Seq) is an emerging technology that has revolutionized the research of the tumor heterogeneity. However, the highly sparse data matrices generated by the technology have posed an obstacle to the analysis of differential gene regulatory networks. Addressing the challenges, this study presents, as far as we know, the first bioinformatics tool for scRNA-Seq-based differential network analysis (scdNet). The tool features a sample size adjustment of gene-gene correlation, comparison of inter-state correlations, and construction of differential networks. A simulation analysis demonstrated the power of scdNet in the analyses of sparse scRNA-Seq data matrices, with low requirement on the sample size, high computation efficiency, and tolerance of sequencing noises. Applying the tool to analyze two datasets of single circulating tumor cells (CTCs) of prostate cancer and early mouse embryos, our data demonstrated that differential gene regulation plays crucial roles in anti-androgen resistance and early embryonic development. Overall, the tool is widely applicable to datasets generated by the emerging technology to bring biological insights into tumor heterogeneity and other studies.
机译:单细胞RNA测序(scRNA-Seq)是一项新兴技术,彻底改变了肿瘤异质性研究。但是,该技术生成的稀疏数据矩阵给差异基因调控网络的分析带来了障碍。为应对挑战,据我们所知,本研究提出了第一个用于基于scRNA-Seq的差异网络分析(scdNet)的生物信息学工具。该工具具有基因-基因相关性的样本大小调整,状态间相关性比较和差异网络构建的功能。仿真分析证明了scdNet在稀疏scRNA-Seq数据矩阵分析中的强大功能,对样本量要求低,计算效率高且对测序噪声具有耐受性。应用该工具分析前列腺癌和早期小鼠胚胎的单个循环肿瘤细胞(CTC)的两个数据集,我们的数据表明差异基因调控在抗雄激素耐药性和早期胚胎发育中起着至关重要的作用。总体而言,该工具可广泛应用于新兴技术生成的数据集,以将生物学见解带入肿瘤异质性和其他研究。

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