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A reliable measure of similarity based on dependency for short time series: an application to gene expression networks

机译:基于短时间序列依赖性的可靠相似性度量:在基因表达网络中的应用

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摘要

Abstract Background Microarray techniques have become an important tool to the investigation of genetic relationships and the assignment of different phenotypes. Since microarrays are still very expensive, most of the experiments are performed with small samples. This paper introduces a method to quantify dependency between data series composed of few sample points. The method is used to construct gene co-expression subnetworks of highly significant edges. Results The results shown here are for an adapted subset of aSaccharomyces cerevisiaegene expression data set with low temporal resolution and poor statistics. The method reveals common transcription factors with a high confidence level and allows the construction of subnetworks with high biological relevance that reveals characteristic features of the processes driving the organism adaptations to specific environmental conditions. Conclusion Our method allows a reliable and sophisticated analysis of microarray data even under severe constraints. The utilization of systems biology improves the biologists ability to elucidate the mechanisms underlying celular processes and to formulate new hypotheses.
机译:摘要背景芯片技术已成为研究遗传关系和不同表型分配的重要工具。由于微阵列仍然非常昂贵,因此大多数实验都是使用少量样品进行的。本文介绍了一种量化由几个采样点组成的数据序列之间的相关性的方法。该方法用于构建高度显着边缘的基因共表达子网络。结果此处显示的结果是针对酿酒酵母基因表达数据集的一个经过修改的子集,该子集具有较低的时间分辨率和较差的统计数据。该方法揭示了具有高置信度的常见转录因子,并允许构建具有高度生物学相关性的子网,从而揭示了驱动生物适应特定环境条件的过程的特征。结论即使在严格的约束下,我们的方法也可以对微阵列数据进行可靠而复杂的分析。系统生物学的利用提高了生物学家阐明细胞过程背后的机制并提出新假设的能力。

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