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检测转录因子结合对多基因疾病风险的全基因组定向影响。

Detecting genome-wide directional effects of transcription factor binding on polygenic disease risk.

机构信息

Department of Computer Science, Harvard University, Cambridge, MA, USA.

Harvard/MIT MD/PhD Program, Boston, MA, USA.

出版信息

Nat Genet. 2018 Oct;50(10):1483-1493. doi: 10.1038/s41588-018-0196-7. Epub 2018 Sep 3.

Abstract

Biological interpretation of genome-wide association study data frequently involves assessing whether SNPs linked to a biological process, for example, binding of a transcription factor, show unsigned enrichment for disease signal. However, signed annotations quantifying whether each SNP allele promotes or hinders the biological process can enable stronger statements about disease mechanism. We introduce a method, signed linkage disequilibrium profile regression, for detecting genome-wide directional effects of signed functional annotations on disease risk. We validate the method via simulations and application to molecular quantitative trait loci in blood, recovering known transcriptional regulators. We apply the method to expression quantitative trait loci in 48 Genotype-Tissue Expression tissues, identifying 651 transcription factor-tissue associations including 30 with robust evidence of tissue specificity. We apply the method to 46 diseases and complex traits (average n = 290 K), identifying 77 annotation-trait associations representing 12 independent transcription factor-trait associations, and characterize the underlying transcriptional programs using gene-set enrichment analyses. Our results implicate new causal disease genes and new disease mechanisms.

摘要

全基因组关联研究数据的生物学解释通常涉及评估与生物过程(例如转录因子结合)相关的 SNPs 是否存在疾病信号的非定向富集。然而,对每个 SNP 等位基因促进或阻碍生物过程的定向注释可以对疾病机制做出更强有力的陈述。我们介绍了一种方法,即定向连锁不平衡谱回归,用于检测有向功能注释对疾病风险的全基因组效应。我们通过模拟和对血液中分子数量性状基因座的应用来验证该方法,恢复了已知的转录调控因子。我们将该方法应用于 48 个组织表达定量基因座,鉴定出 651 个转录因子-组织关联,其中 30 个具有组织特异性的稳健证据。我们将该方法应用于 46 种疾病和复杂特征(平均 n=290K),鉴定出 77 个注释-特征关联,代表 12 个独立的转录因子-特征关联,并使用基因集富集分析来描述潜在的转录程序。我们的结果表明了新的因果疾病基因和新的疾病机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5f98/6202062/c2714cde06fa/nihms-981071-f0001.jpg

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