50多种不同细胞类型的3D基因组特征揭示了儿童肥胖的基因组结构。

Khanh B Trang, Matthew C Pahl, James A Pippin, Chun Su, Sheridan H Littleton, Prabhat Sharma, Nikhil N Kulkarni, Louis R Ghanem, Natalie A Terry, Joan M O'Brien, Yadav Wagley, Kurt D Hankenson, Ashley Jermusyk, Jason W Hoskins, Laufey T Amundadottir, Mai Xu, Kevin M Brown, Stewart A Anderson, Wenli Yang, Paul M Titchenell, Patrick Seale, Laura Cook, Megan K Levings, Babette S Zemel, Alessandra Chesi, Andrew D Wells, Struan F A Grant
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引用次数: 0

摘要

重要性:世界范围内儿童肥胖的患病率正在增加,同时伴随着2型糖尿病和心血管疾病等相关的常见合并症。基于强大的遗传成分的证据,我们之前对儿童肥胖的全基因组关联研究(GWAS)揭示了19个独立的特征信号;然而,这些基因座的作用机制仍有待阐明。目的:为了对这些儿童肥胖基因座进行分子表征,我们试图在不同的细胞环境中确定潜在的因果变异和相应的效应基因。设计:将儿童肥胖GWAS汇总统计数据与我们现有的57种人类细胞类型的3D基因组数据集相结合,包括高分辨率启动子聚焦的Capture-C/Hi-C、ATAC-seq和RNA-seq,以应用分层LD评分回归,并计算可归因于细胞类型特异性特征的全基因组SNP遗传率的比例。随后对全基因组显著的儿童肥胖基因座及其连锁不平衡指标进行了基于染色质接触的精细定位,以暗示效应基因。结果:胰腺α细胞显示了儿童肥胖变异的最具统计学意义的富集。随后基于染色质接触的精细定位在骨骼肌肌管和胰腺β细胞系EndoC-BH1的BDNF、ADCY3、TMEM18和FTO基因座上产生了最丰富的候选变体和靶基因。在多种免疫细胞类型的关键TMEM18基因座上观察到一种新的相关效应基因ALKAL2,这是一种神经伤害感受器中的炎症反应基因。有趣的是,这一观察结果也得到了使用来自基因型组织表达(GTEx)数据集的表达定量特征基因座(eQTL)的共定位分析的支持,支持了儿童肥胖发病机制的炎症和神经成分。结论和相关性:我们对在无数不同细胞类型中生成的3D基因组数据集的全面评估为儿童肥胖发病机制提供了基因组见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

3D genomic features across >50 diverse cell types reveal insights into the genomic architecture of childhood obesity.

3D genomic features across >50 diverse cell types reveal insights into the genomic architecture of childhood obesity.

3D genomic features across >50 diverse cell types reveal insights into the genomic architecture of childhood obesity.

3D genomic features across >50 diverse cell types reveal insights into the genomic architecture of childhood obesity.

The prevalence of childhood obesity is increasing worldwide, along with the associated common comorbidities of type 2 diabetes and cardiovascular disease in later life. Motivated by evidence for a strong genetic component, our prior genome-wide association study (GWAS) efforts for childhood obesity revealed 19 independent signals for the trait; however, the mechanism of action of these loci remains to be elucidated. To molecularly characterize these childhood obesity loci we sought to determine the underlying causal variants and the corresponding effector genes within diverse cellular contexts. Integrating childhood obesity GWAS summary statistics with our existing 3D genomic datasets for 57 human cell types, consisting of high-resolution promoter-focused Capture-C/Hi-C, ATAC-seq, and RNA-seq, we applied stratified LD score regression and calculated the proportion of genome-wide SNP heritability attributable to cell type-specific features, revealing pancreatic alpha cell enrichment as the most statistically significant. Subsequent chromatin contact-based fine-mapping was carried out for genome-wide significant childhood obesity loci and their linkage disequilibrium proxies to implicate effector genes, yielded the most abundant number of candidate variants and target genes at the BDNF, ADCY3, TMEM18 and FTO loci in skeletal muscle myotubes and the pancreatic beta-cell line, EndoC-BH1. One novel implicated effector gene, ALKAL2 - an inflammation-responsive gene in nerve nociceptors - was observed at the key TMEM18 locus across multiple immune cell types. Interestingly, this observation was also supported through colocalization analysis using expression quantitative trait loci (eQTL) derived from the Genotype-Tissue Expression (GTEx) dataset, supporting an inflammatory and neurologic component to the pathogenesis of childhood obesity. Our comprehensive appraisal of 3D genomic datasets generated in a myriad of different cell types provides genomic insights into pediatric obesity pathogenesis.

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