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综合分析儿科队列中血浆代谢组学的潜在遗传影响因素。

Comprehensive characterization of putative genetic influences on plasma metabolome in a pediatric cohort.

机构信息

Computational Health Informatics Program, Boston Children's Hospital, 401 Park Drive, Boston, MA, 02215, USA.

Division of Pulmonary, Allergy, and Critical Care Medicine, Department of Medicine, Emory University, Atlanta, GA, 30602, USA.

出版信息

Hum Genomics. 2022 Dec 8;16(1):67. doi: 10.1186/s40246-022-00440-w.

Abstract

BACKGROUND

The human exposome is composed of diverse metabolites and small chemical compounds originated from endogenous and exogenous sources, respectively. Genetic and environmental factors influence metabolite levels, while the extent of genetic contributions across metabolic pathways is not yet known. Untargeted profiling of human metabolome using high-resolution mass spectrometry (HRMS) combined with genome-wide genotyping allows comprehensive identification of genetically influenced metabolites. As such previous studies of adults discovered and replicated genotype-metabotype associations. However, these associations have not been characterized in children.

RESULTS

We conducted the largest genome by metabolome-wide association study to date of children (N = 441) using 619,688 common genetic variants and 14,342 features measured by HRMS. Narrow-sense heritability (h) estimates of plasma metabolite concentrations using genomic relatedness matrix restricted maximum likelihood (GREML) method showed a bimodal distribution with high h (> 0.8) for 15.9% of features and low h (< 0.2) for most of features (62.0%). The features with high h were enriched for amino acid and nucleic acid metabolism, while carbohydrate and lipid concentrations showed low h. For each feature, a metabolite quantitative trait loci (mQTL) analysis was performed to identify genetic variants that were potentially associated with plasma levels. Fifty-four associations among 29 features and 43 genetic variants were identified at a genome-wide significance threshold p < 3.5 × 10 (= 5 × 10/14,342 features). Previously reported associations such as UGT1A1 and bilirubin; PYROXD2 and methyl lysine; and ACADS and butyrylcarnitine were successfully replicated in our pediatric cohort. We found potential candidates for novel associations including CSMD1 and a monostearyl alcohol triglyceride (m/z 781.7483, retention time (RT) 89.3 s); CALN1 and Tridecanol (m/z 283.2741, RT 27.6). A gene-level enrichment analysis using MAGMA revealed highly interconnected modules for dADP biosynthesis, sterol synthesis, and long-chain fatty acid transport in the gene-feature network.

CONCLUSION

Comprehensive profiling of plasma metabolome across age groups combined with genome-wide genotyping revealed a wide range of genetic influence on diverse chemical species and metabolic pathways. The developmental trajectory of a biological system is shaped by gene-environment interaction especially in early life. Therefore, continuous efforts on generating metabolomics data in diverse human tissue types across age groups are required to understand gene-environment interaction toward healthy aging trajectories.

摘要

背景

人体暴露组由分别源自内源性和外源性来源的多种代谢物和小分子化合物组成。遗传和环境因素影响代谢物水平,而遗传因素对代谢途径的影响程度尚不清楚。使用高分辨率质谱(HRMS)结合全基因组基因分型对人类代谢组进行非靶向分析,可以全面鉴定受遗传影响的代谢物。因此,先前的成人研究发现并复制了基因型-代谢型关联。然而,这些关联在儿童中尚未得到描述。

结果

我们使用 HRMS 测量的 619688 个常见遗传变体和 14342 个特征,对儿童(N=441)进行了迄今为止最大的全基因组代谢组关联研究。使用基因组相关矩阵限制最大似然法(GREML)的血浆代谢物浓度狭义遗传力(h)估计值呈双峰分布,特征 h 值高(>0.8)的占 15.9%,而大多数特征 h 值低(<0.2)。h 值高的特征富含氨基酸和核酸代谢物,而碳水化合物和脂质浓度 h 值低。对于每个特征,都进行了代谢物数量性状基因座(mQTL)分析,以鉴定可能与血浆水平相关的遗传变体。在全基因组显著阈值 p<3.5×10(=5×10/14342 个特征)下,在 29 个特征和 43 个遗传变体中鉴定出 54 个关联。在我们的儿科队列中成功复制了先前报道的关联,如 UGT1A1 和胆红素;PYROXD2 和甲基赖氨酸;以及 ACADS 和丁酰肉碱。我们发现了一些新的关联的潜在候选物,包括 CSMD1 和单硬脂酸甘油三酯(m/z 781.7483,保留时间(RT)89.3 s);CALN1 和十三烷醇(m/z 283.2741,RT 27.6)。使用 MAGMA 进行的基因水平富集分析显示,在基因-特征网络中,dADP 生物合成、固醇合成和长链脂肪酸转运具有高度互联的模块。

结论

对不同年龄组的血浆代谢组进行全面分析,并结合全基因组基因分型,揭示了遗传对多种化学物质和代谢途径的广泛影响。生物系统的发育轨迹是由基因-环境相互作用塑造的,尤其是在生命早期。因此,需要不断努力在不同年龄段的多种人体组织类型中生成代谢组学数据,以了解基因-环境相互作用对健康衰老轨迹的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a80/9730628/4adc4555763b/40246_2022_440_Fig1_HTML.jpg

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