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Comprehensively Evaluating cis-Regulatory Variation in the Human Prostate Transcriptome by Using Gene-Level Allele-Specific Expression

机译:通过使用基因级等位基因特异性表达全面评估人前列腺转录组的顺式调节变化

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The identification of cis-acting regulatory variation in primary tissues has the potential to elucidate the genetic basis of complex traits and further our understanding of transcriptomic diversity across cell types. Expression quantitative trait locus (eQTL) association analysis using RNA sequencing (RNA-seq) data can improve upon the detection of cis-acting regulatory variation by leveraging allele-specific expression (ASE) patterns in association analysis. Here, we present a comprehensive evaluation of cis-acting eQTLs by analyzing RNA-seq gene-expression data and genome-wide high-density genotypes from 471 samples of normal primary prostate tissue. Using statistical models that integrate ASE information, we identified extensive cis-eQTLs across the prostate transcriptome and found that approximately 70% of expressed genes corresponded to a significant eQTL at a gene-level false-discovery rate of 0.05. Overall, cis-eQTLs were heavily concentrated near the transcription start and stop sites of affected genes, and effects were negatively correlated with distance. We identified multiple instances of cis-acting co-regulation by using phased genotype data and discovered 233 SNPs as the most strongly associated eQTLs for more than one gene. We also noted significant enrichment (25/50, p = 2E-5) of previously reported prostate cancer risk SNPs in prostate eQTLs. Our results illustrate the benefit of assessing ASE data in cis-eQTL analyses by showing better reproducibility of prior eQTL findings than of eQTL mapping based on total expression alone. Altogether, our analysis provides extensive functional context of thousands of SNPs in prostate tissue, and these results will be of critical value in guiding studies examining disease of the human prostate.
机译:鉴定初级组织的CIS作用调节变异有可能阐明复杂性状的遗传基础,并进一步了解细胞类型的转录组多样性。表达定量性状基因座(EQT1)使用RNA测序(RNA-SEQ)数据的关联分析可以通过利用相关性分析中的等位基因特异性表达(ASE)模式来改善CIS作用调节变化。在这里,我们通过分析来自正常原代前列腺组织的471个样品的RNA-SEQ基因表达数据和基因组宽的高密度基因型来综合评估顺式作用EQTL。使用整合ASE信息的统计模型,我们在前列腺转录组中识别出广泛的顺式-SQTLS,发现大约70%的表达基因对应于基因级假冒发现率为0.05的显着EQTL。总体而言,CIS-EQTLS在受影响基因的转录开始和停止位点附近大量集中,并且效果与距离负相关。我们通过使用相位基因型数据鉴定了CIS作用共调节的多种情况,并发现了233个SNP,作为多个基因的最强烈相关的EQTL。我们还注意到先前报告的前列腺癌风险SNP的显着富集(25/50,P = 2E-5)。我们的结果说明了通过基于单独表达式的总体表达式显示先前EQTL结果的更好的再现性来评估CIS-EQTL分析中的ASE数据的益处。完全,我们的分析在前列腺组织中提供了成千上万的SNP的广泛功能背景,这些结果将是指导人类前列腺疾病的指导研究的关键价值。

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