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A data integration methodology for systems biology: Experimental verification

机译:系统生物学的数据集成方法:实验验证

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摘要

The integration of data from multiple global assays is essential to understanding dynamic spatiotemporal interactions within cells. In a companion paper, we reported a data integration methodology, designated Pointillist, that can handle multiple data types from technologies with different noise characteristics. Here we demonstrate its application to the integration of 18 data sets relating to galactose utilization in yeast. These data include global changes in mRNA and protein abundance, genome-wide protein–DNA interaction data, database information, and computational predictions of protein–DNA and protein–protein interactions. We divided the integration task to determine three network components: key system elements (genes and proteins), protein–protein interactions, and protein–DNA interactions. Results indicate that the reconstructed network efficiently focuses on and recapitulates the known biology of galactose utilization. It also provided new insights, some of which were verified experimentally. The methodology described here, addresses a critical need across all domains of molecular and cell biology, to effectively integrate large and disparate data sets.
机译:来自多个全局测定的数据整合对于理解细胞内动态时空相互作用至关重要。在随附的论文中,我们报告了一种称为Pointillist的数据集成方法,该方法可以处理来自具有不同噪声特征的技术的多种数据类型。在这里,我们展示了其在18个与酵母中半乳糖利用有关的数据集的集成中的应用。这些数据包括mRNA和蛋白质丰度的全球变化,全基因组蛋白质-DNA相互作用数据,数据库信息以及蛋白质-DNA和蛋白质-蛋白质相互作用的计算预测。我们将集成任务划分为三个网络组件:关键系统元素(基因和蛋白质),蛋白质与蛋白质的相互作用以及蛋白质与DNA的相互作用。结果表明,重建的网络有效地专注于并概括了半乳糖利用的已知生物学。它还提供了新的见解,其中一些已通过实验验证。此处描述的方法论解决了分子和细胞生物学所有领域的关键需求,以有效地整合大型且分散的数据集。

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