Genotype inference from aggregated chromatin accessibility data reveals genetic regulatory mechanisms

IF 10.1 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Brandon M. Wenz, Yuan He, Nae-Chyun Chen, Joseph K. Pickrell, Jeremiah H. Li, Max F. Dudek, Taibo Li, Rebecca Keener, Benjamin F. Voight, Christopher D. Brown, Alexis Battle
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引用次数: 0

Abstract

Understanding the genetic causes underlying variability in chromatin accessibility can shed light on the molecular mechanisms through which genetic variants may affect complex traits. Thousands of ATAC-seq samples have been collected that hold information about chromatin accessibility across diverse cell types and contexts, but most of these are not paired with genetic information and come from distinct projects and laboratories. We report here joint genotyping, chromatin accessibility peak calling, and discovery of quantitative trait loci which influence chromatin accessibility (caQTLs), demonstrating the capability of performing caQTL analysis on a large scale in a diverse sample set without pre-existing genotype information. Using 10,293 profiling samples representing 1454 unique donor individuals across 653 studies from public databases, we catalog 24,159 caQTLs in total. After joint discovery analysis, we cluster samples based on accessible chromatin profiles to identify context-specific caQTLs. We find that caQTLs are strongly enriched for annotations of gene regulatory elements across diverse cell types and tissues and are often linked with genetic variation associated with changes in expression (eQTLs), indicating that caQTLs can mediate genetic effects on gene expression. We demonstrate sharing of causal variants for chromatin accessibility across human traits, enabling a more complete picture of the genetic mechanisms underlying complex human phenotypes. Our work provides a proof of principle for caQTL calling from previously ungenotyped samples and represents one of the largest, most diverse caQTL resources currently available, informing mechanisms of genetic regulation of gene expression and contribution to disease.
从聚集的染色质可接近性数据推断基因型揭示遗传调控机制
了解染色质可及性变异的遗传原因可以揭示遗传变异影响复杂性状的分子机制。已经收集了数千个ATAC-seq样本,这些样本包含了不同细胞类型和环境下染色质可及性的信息,但其中大多数没有与遗传信息配对,并且来自不同的项目和实验室。我们在此报告了联合基因分型、染色质可达性峰召唤和影响染色质可达性的数量性状位点(caQTL)的发现,证明了在没有预先存在的基因型信息的情况下,在不同样本集中进行大规模caQTL分析的能力。使用来自公共数据库的653项研究中代表1454个独特供体个体的10293个分析样本,我们共编目了24159个caqtl。在联合发现分析之后,我们基于可访问的染色质谱对样本进行聚类,以识别上下文特定的caqtl。我们发现caQTLs在不同的细胞类型和组织中都富含基因调控元件的注释,并且通常与表达变化相关的遗传变异(eQTLs)相关,这表明caQTLs可以介导基因表达的遗传效应。我们展示了人类特征中染色质可及性的因果变异的共享,从而能够更完整地了解复杂人类表型背后的遗传机制。我们的工作为从以前未基因分型的样本中调用caQTL提供了原理证明,并代表了目前可用的最大,最多样化的caQTL资源之一,为基因表达的遗传调控机制和对疾病的贡献提供了信息。
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来源期刊
Genome Biology
Genome Biology Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
21.00
自引率
3.30%
发文量
241
审稿时长
2 months
期刊介绍: Genome Biology stands as a premier platform for exceptional research across all domains of biology and biomedicine, explored through a genomic and post-genomic lens. With an impressive impact factor of 12.3 (2022),* the journal secures its position as the 3rd-ranked research journal in the Genetics and Heredity category and the 2nd-ranked research journal in the Biotechnology and Applied Microbiology category by Thomson Reuters. Notably, Genome Biology holds the distinction of being the highest-ranked open-access journal in this category. Our dedicated team of highly trained in-house Editors collaborates closely with our esteemed Editorial Board of international experts, ensuring the journal remains on the forefront of scientific advances and community standards. Regular engagement with researchers at conferences and institute visits underscores our commitment to staying abreast of the latest developments in the field.
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