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Horizontal and vertical integrative analysis methods for mental disorders omics data

机译:精神疾病组学数据的水平和垂直综合分析方法

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摘要

In recent biomedical studies, omics profiling has been extensively conducted on various types of mental disorders. In most of the existing analyses, a single type of mental disorder and a single type of omics measurement are analyzed. In the study of other complex diseases, integrative analysis, both vertical and horizontal integration, has been conducted and shown to bring significantly new insights into disease etiology, progression, biomarkers, and treatment. In this article, we showcase the applicability of integrative analysis to mental disorders. In particular, the horizontal integration of bipolar disorder and schizophrenia and the vertical integration of gene expression and copy number variation data are conducted. The analysis is based on the sparse principal component analysis, penalization, and other advanced statistical techniques. In data analysis, integration leads to biologically sensible findings, including the disease-related gene expressions, copy number variations, and their associations, which differ from the “benchmark” analysis. Overall, this study suggests the potential of integrative analysis in mental disorder research.
机译:在最近的生物医学研究中,已经对各种类型的精神障碍广泛进行了组学分析。在大多数现有分析中,分析了单一类型的精神障碍和单一类型的组学测量。在研究其他复杂疾病时,已经进行了垂直和水平整合的综合分析,并显示出对疾病病因,进展,生物标志物和治疗的重要见解。在本文中,我们展示了综合分析对精神障碍的适用性。特别地,进行双相情感障碍和精神分裂症的水平整合以及基因表达和拷贝数变异数据的垂直整合。该分析基于稀疏主成分分析,惩罚和其他高级统计技术。在数据分析中,整合会导致生物学上有意义的发现,包括与疾病相关的基因表达,拷贝数变异及其关联,这与“基准”分析有所不同。总的来说,这项研究表明了整合分析在精神障碍研究中的潜力。

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