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首页> 外文期刊>International journal of data mining and bioinformatics >Integration of multi-omics data for integrative gene regulatory network inference
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Integration of multi-omics data for integrative gene regulatory network inference

机译:综合基因监管网络推论的多OMICS数据集成

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摘要

Gene regulatory networks provide comprehensive insights and indepth understanding of complex biological processes. The molecular interactions of gene regulatory networks are inferred from a single type of genomic data, e.g., gene expression data in most research. However, gene expression is a product of sequential interactions of multiple biological processes, such as DNA sequence variations, copy number variations, histone modifications, transcription factors, and DNA methylations. The recent rapid advances of high-throughput omics technologies enable one to measure multiple types of omics data, called 'multi-omics data', that represent the various biological processes. In this paper, we propose an Integrative Gene Regulatory Network inference method (iGRN) that incorporates multi-omics data and their interactions in gene regulatory networks. In addition to gene expressions, copy number variations and DNA methylations were considered for multi-omics data in this paper. The intensive experiments were carried out with simulation data, where iGRN's capability that infers the integrative gene regulatory network is assessed. Through the experiments, iGRN shows its better performance on model representation and interpretation than other integrative methods in gene regulatory network inference. iGRN was also applied to a human brain dataset of psychiatric disorders, and the biological network of psychiatric disorders was analysed.
机译:基因监管网络为复杂的生物过程提供全面的见解和深度理解。从大多数研究中,从单一类型的基因组数据中推断基因调节网络的分子相互作用。然而,基因表达是多种生物过程的顺序相互作用的产物,例如DNA序列变化,拷贝数变异,组蛋白修饰,转录因子和DNA甲基化。近期高吞吐量OMICS技术的快速进步使得可以测量多种类型的OMIC数据,称为“多OMICS数据”,其代表各种生物过程。在本文中,我们提出了一种集成基因调节网络推理方法(IGRN),其包含多OMICS数据及其在基因监管网络中的相互作用。除了基因表达外,本文考虑了多OMICS数据的拷贝数变异和DNA甲基化。利用仿真数据进行了密集实验,其中评估了IGRN的IGRN能力的能力进行了评估。通过实验,IGRN在基因调节网络推理中的其他综合方法上表现出更好的模型表示和解释性能。 IGRN也适用于精神疾病的人脑数据集,分析了精神疾病的生物网络。

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