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Systems view of adipogenesis via novel omics-driven and tissue-specific activity scoring of network functional modules

机译:通过网络功能模块的新型组学驱动和组织特异性活动评分对脂肪形成的系统看法

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摘要

The investigation of the complex processes involved in cellular differentiation must be based on unbiased, high throughput data processing methods to identify relevant biological pathways. A number of bioinformatics tools are available that can generate lists of pathways ranked by statistical significance (i.e. by p-value), while ideally it would be desirable to functionally score the pathways relative to each other or to other interacting parts of the system or process. We describe a new computational method (Network Activity Score Finder - NASFinder) to identify tissue-specific, omics-determined sub-networks and the connections with their upstream regulator receptors to obtain a systems view of the differentiation of human adipocytes. Adipogenesis of human SBGS pre-adipocyte cells in vitro was monitored with a transcriptomic data set comprising six time points (0, 6, 48, 96, 192, 384 hours). To elucidate the mechanisms of adipogenesis, NASFinder was used to perform time-point analysis by comparing each time point against the control (0 h) and time-lapse analysis by comparing each time point with the previous one. NASFinder identified the coordinated activity of seemingly unrelated processes between each comparison, providing the first systems view of adipogenesis in culture. NASFinder has been implemented into a web-based, freely available resource associated with novel, easy to read visualization of omics data sets and network modules.
机译:对涉及细胞分化的复杂过程的研究必须基于无偏倚的高通量数据处理方法,以识别相关的生物学途径。可以使用许多生物信息学工具来生成按统计显着性(即按p值)排序的路径列表,而理想情况下,希望在功能上对彼此之间或相对于系统或过程的其他交互部分进行功能评分。我们描述了一种新的计算方法(网络活动得分查找器-NASFinder),用于识别组织特定的,由组学确定的子网以及与其上游调节受体的连接,从而获得人脂肪细胞分化的系统视图。用包含六个时间点(0、6、48、96、192、384小时)的转录组数据集监测人SBGS前脂肪细胞的体外脂肪形成。为了阐明脂肪形成的机制,使用NASFinder通过将每个时间点与对照(0 h)进行比较来执行时间点分析,并通过将每个时间点与上一个时间点进行比较来进行延时分析。 NASFinder确定了每个比较之间看似无关的过程的协调活动,从而提供了文化中脂肪形成的第一个系统视图。 NASFinder已实现为基于网络的免费资源,与新颖,易于阅读的组学数据集和网络模块可视化相关。

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