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利用RNA测序数据中的等位基因特异性表达发现调控人类基因表达的单核苷酸多态性

Discovering Single Nucleotide Polymorphisms Regulating Human Gene Expression Using Allele Specific Expression from RNA-seq Data.

作者信息

Kang Eun Yong, Martin Lisa J, Mangul Serghei, Isvilanonda Warin, Zou Jennifer, Ben-David Eyal, Han Buhm, Lusis Aldons J, Shifman Sagiv, Eskin Eleazar

机构信息

Department of Computer Science, University of California, Los Angeles, California 90095-1596.

Department of Human Genetics, University of California, Los Angeles, California 90095-1596.

出版信息

Genetics. 2016 Nov;204(3):1057-1064. doi: 10.1534/genetics.115.177246. Epub 2016 Oct 7.

Abstract

The study of the genetics of gene expression is of considerable importance to understanding the nature of common, complex diseases. The most widely applied approach to identifying relationships between genetic variation and gene expression is the expression quantitative trait loci (eQTL) approach. Here, we increased the computational power of eQTL with an alternative and complementary approach based on analyzing allele specific expression (ASE). We designed a novel analytical method to identify cis-acting regulatory variants based on genome sequencing and measurements of ASE from RNA-sequencing (RNA-seq) data. We evaluated the power and resolution of our method using simulated data. We then applied the method to map regulatory variants affecting gene expression in lymphoblastoid cell lines (LCLs) from 77 unrelated northern and western European individuals (CEU), which were part of the HapMap project. A total of 2309 SNPs were identified as being associated with ASE patterns. The SNPs associated with ASE were enriched within promoter regions and were significantly more likely to signal strong evidence for a regulatory role. Finally, among the candidate regulatory SNPs, we identified 108 SNPs that were previously associated with human immune diseases. With further improvements in quantifying ASE from RNA-seq, the application of our method to other datasets is expected to accelerate our understanding of the biological basis of common diseases.

摘要

基因表达遗传学的研究对于理解常见复杂疾病的本质具有相当重要的意义。识别遗传变异与基因表达之间关系的最广泛应用方法是表达数量性状位点(eQTL)方法。在此,我们基于分析等位基因特异性表达(ASE),采用一种替代且互补的方法提高了eQTL的计算能力。我们设计了一种新颖的分析方法,基于基因组测序和RNA测序(RNA-seq)数据的ASE测量来识别顺式作用调控变异。我们使用模拟数据评估了我们方法的效能和分辨率。然后,我们将该方法应用于绘制影响来自77名无关北欧和西欧个体(CEU)的淋巴母细胞系(LCL)中基因表达的调控变异图谱,这些个体是国际人类基因组单体型图计划(HapMap计划)的一部分。总共鉴定出2309个单核苷酸多态性(SNP)与ASE模式相关。与ASE相关的SNP在启动子区域富集,并且更有可能为调控作用提供有力证据。最后,在候选调控SNP中,我们鉴定出108个先前与人类免疫疾病相关的SNP。随着从RNA-seq中定量ASE的进一步改进,预计我们的方法在其他数据集上的应用将加速我们对常见疾病生物学基础的理解。

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