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Inference of SNP-Gene Regulatory Networks by Integrating Gene Expressions and Genetic Perturbations

机译:通过整合基因表达和遗传扰动来推断SNP-基因调节网络

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摘要

In order to elucidate the overall relationships between gene expressions and genetic perturbations, we propose a network inference method to infer gene regulatory network where single nucleotide polymorphism (SNP) is involved as a regulator of genes. In the most of the network inferences named as SNP-gene regulatory network (SGRN) inference, pairs of SNP-gene are given by separately performing expression quantitative trait loci (eQTL) mappings. In this paper, we propose a SGRN inference method without predefined eQTL information assuming a gene is regulated by a single SNP at most. To evaluate the performance, the proposed method was applied to random data generated from synthetic networks and parameters. There are three main contributions. First, the proposed method provides both the gene regulatory inference and the eQTL identification. Second, the experimental results demonstrated that integration of multiple methods can produce competitive performances. Lastly, the proposed method was also applied to psychiatric disorder data in order to explore how the method works with real data.
机译:为了阐明基因表达和基因扰动之间的整体关系,我们提出了一种网络推断方法到单核苷酸多态性(SNP)是参与的基因的调节剂推断基因调控网络。在最命名为SNP基因调控网络(SGRN)推论的网络推断,SNP基因的对由分别进行表达数量性状基因座(eQTL)映射给出。在本文中,我们提出了不预先eQTL信息假定的基因是由一个单一的SNP最规范的一个SGRN推理方法。为了评价性能,所提出的方法应用于由合成网络和参数生成的随机数据。有三个主要贡献。首先,该方法提供了基因调控推理和eQTL识别两者。二,实验结果表明,整合多种方法可以生产具有竞争力的表演。最后,该方法也适用于精神障碍的数据,以探讨如何使用该方法与实际数据的工作。

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