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Extraction and Integration of Genetic Networks from Short-Profile Omic Data Sets

机译:遗传网络从短型室外数据集的提取与集成

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摘要

Mass spectrometry technologies are widely used in the fields of ionomics and metabolomics to simultaneously profile the intracellular concentrations of, e.g., amino acids or elements in genome-wide mutant libraries. These molecular or sub-molecular features are generally non-Gaussian and their covariance reveals patterns of correlations that reflect the system nature of the cell biochemistry and biology. Here, we introduce two similarity measures, the Mahalanobis cosine and the hybrid Mahalanobis cosine, that enforce information from the empirical covariance matrix of omics data from high-throughput screening and that can be used to quantify similarities between the profiled features of different mutants. We evaluate the performance of these similarity measures in the task of inferring and integrating genetic networks from short-profile ionomics/metabolomics data through an analysis of experimental data sets related to the ionome and the metabolome of the model organism S. cerevisiae. The study of the resulting ionome–metabolome Saccharomyces cerevisiae multilayer genetic network, which encodes multiple omic-specific levels of correlations between genes, shows that the proposed measures can provide an alternative description of relations between biological processes when compared to the commonly used Pearson’s correlation coefficient and have the potential to guide the construction of novel hypotheses on the function of uncharacterised genes.
机译:大众化光谱技术广泛用于离子学和代谢组科的领域,以同时剖开细胞内浓度,例如氨基酸或基因组突变体文库中的元素。这些分子或亚分子特征通常是非高斯,其协方差揭示了反映细胞生物化学和生物学的系统性质的相关性的相关性。在这里,我们介绍了两种相似度措施,Mahalanobis余弦和混合mahalanobis余弦,从高通量筛选中强制来自OMICS数据的经验协方差矩阵,并且可用于量化不同突变体的异形特征之间的相似性。我们通过分析与离子组合有关的实验数据集和模型生物体S.酿酒酵母的实验数据集来评估从短型离子素/代谢组数据中推断和整合遗传网络的任务的性能。对所得离子代谢酵母菌酿酒酵母多层遗传网络的研究,该多层遗传网络在基因之间编码多个OMIC特异性相关性,表明,与常用的Pearson的相关系数相比,所提出的措施可以提供生物过程之间的关系的替代描述并且有可能引导对非特征性基因的功能的新假设的构建。

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