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多组学数据的综合通路富集分析。

Integrative pathway enrichment analysis of multivariate omics data.

机构信息

Computational Biology Program, Ontario Institute for Cancer Research, 661 University Ave Suite 510, Toronto, ON, M5G 0A3, Canada.

Department of Medical Biophysics, University of Toronto, 101 College Street Suite 15-701, Toronto, ON, M5G 1L7, Canada.

出版信息

Nat Commun. 2020 Feb 5;11(1):735. doi: 10.1038/s41467-019-13983-9.

Abstract

Multi-omics datasets represent distinct aspects of the central dogma of molecular biology. Such high-dimensional molecular profiles pose challenges to data interpretation and hypothesis generation. ActivePathways is an integrative method that discovers significantly enriched pathways across multiple datasets using statistical data fusion, rationalizes contributing evidence and highlights associated genes. As part of the ICGC/TCGA Pan-Cancer Analysis of Whole Genomes (PCAWG) Consortium, which aggregated whole genome sequencing data from 2658 cancers across 38 tumor types, we integrated genes with coding and non-coding mutations and revealed frequently mutated pathways and additional cancer genes with infrequent mutations. We also analyzed prognostic molecular pathways by integrating genomic and transcriptomic features of 1780 breast cancers and highlighted associations with immune response and anti-apoptotic signaling. Integration of ChIP-seq and RNA-seq data for master regulators of the Hippo pathway across normal human tissues identified processes of tissue regeneration and stem cell regulation. ActivePathways is a versatile method that improves systems-level understanding of cellular organization in health and disease through integration of multiple molecular datasets and pathway annotations.

摘要

多组学数据集代表了分子生物学中心法则的不同方面。这种高维分子谱给数据解释和假设生成带来了挑战。ActivePathways 是一种综合方法,它使用统计数据融合在多个数据集上发现显著富集的途径,使贡献证据合理化,并突出相关基因。作为 ICGC/TCGA 全基因组泛癌分析 (PCAWG) 联盟的一部分,该联盟汇集了来自 38 种肿瘤类型的 2658 种癌症的全基因组测序数据,我们整合了具有编码和非编码突变的基因,并揭示了经常发生突变的途径以及其他具有罕见突变的癌症基因。我们还通过整合 1780 例乳腺癌的基因组和转录组特征来分析预后分子途径,并强调了与免疫反应和抗细胞凋亡信号的关联。通过整合正常人体组织中 Hippo 途径的主调控因子的 ChIP-seq 和 RNA-seq 数据,确定了组织再生和干细胞调节的过程。ActivePathways 是一种通用的方法,通过整合多个分子数据集和途径注释,提高了对健康和疾病中细胞组织的系统水平理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/46c2/7002665/671726db7333/41467_2019_13983_Fig1_HTML.jpg

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