数量性状位点
表达数量性状基因座
RNA剪接
特质
遗传学
表达式(计算机科学)
计算生物学
生物
选择性拼接
进化生物学
基因
计算机科学
基因型
信使核糖核酸
单核苷酸多态性
核糖核酸
程序设计语言
作者
Peter Orchard,Thomas W. Blackwell,Linda Kachuri,Peter J. Castaldi,Michael H. Cho,Stephanie A. Christenson,Peter Durda,Stacey Gabriel,Craig P. Hersh,Scott Huntsman,S.-J. Hwang,Roby Joehanes,Mari Johnson,Xingnan Li,Honghuang Lin,Ching‐Ti Liu,Yongmei Liu,Angel C. Y. Mak,Ani Manichaikul,David T. Paik
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-07-16
卷期号:393 (6808): eadx2989-eadx2989
被引量:14
标识
DOI:10.1126/science.adx2989
摘要
Abstract Most genetic variants associated with complex traits and diseases occur in non-coding genomic regions and are hypothesized to regulate gene expression. To understand the genetics underlying gene expression variability, we characterize 14,324 ancestrally diverse RNA-sequencing samples from the NHLBI Trans-Omics for Precision Medicine (TOPMed) program and integrate whole genome sequencing data to perform cis and trans expression and splicing quantitative trait locus ( cis -/trans-e/sQTL) analyses in six tissues and cell types, most notably whole blood (N=6,454) and lung (N=1,291). We show this dataset enables greater detection of secondary cis-e/sQTL signals than was achieved in previous studies, and that secondary cis-eQTL and primary trans-eQTL signal discovery is not saturated even though eGene discovery is. Most TOPMed trans-eQTL signals colocalize with cis-e/sQTL signals, suggesting many trans signals are mediated by cis signals. We fine-map European UK BioBank GWAS signals from 164 traits and colocalize the resulting 34,107 fine-mapped GWAS signals with TOPMed e/sQTL signals, finding that of 10,611 GWAS signals with a colocalization, 7,096 GWAS signals colocalize with at least one secondary e/sQTL signal. These results demonstrate that larger e/sQTL analyses will continue to uncover secondary e/sQTL signals, and that these new signals will benefit GWAS interpretation.
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