Addressing the Missing Heritability Problem With the Help of Regulatory Features

Shanshan Dong, Yan Guo, Tie-Lin Yang
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Abstract

Genome-wide association studies (GWASs) have successfully identified thousands of susceptibility loci for human complex diseases. However, missing heritability is still a challenging problem. Considering most GWAS loci are located in regulatory elements, we recently developed a pipeline named functional disease-associated single-nucleotide polymorphisms (SNPs) prediction (FDSP), to predict novel susceptibility loci for complex diseases based on the interpretation of regulatory features and published GWAS results with machine learning. When applied to type 2 diabetes and hypertension, the predicted susceptibility loci by FDSP were proved to be capable of explaining additional heritability. In addition, potential target genes of the predicted positive SNPs were significantly enriched in disease-related pathways. Our results suggested that taking regulatory features into consideration might be a useful way to address the missing heritability problem. We hope FDSP could offer help for the identification of novel susceptibility loci for complex diseases.
借助调控特征解决缺失遗传性问题
全基因组关联研究(GWASs)已经成功地确定了人类复杂疾病的数千个易感位点。然而,缺失遗传性仍然是一个具有挑战性的问题。考虑到大多数GWAS位点位于调控元件,我们最近开发了一个名为功能性疾病相关单核苷酸多态性(snp)预测(FDSP)的管道,基于对调控特征的解释和已发表的机器学习GWAS结果来预测复杂疾病的新易感位点。当应用于2型糖尿病和高血压时,FDSP预测的易感位点被证明能够解释额外的遗传力。此外,预测阳性snp的潜在靶基因在疾病相关通路中显著富集。我们的研究结果表明,考虑调控特征可能是解决遗传缺失问题的有效方法。我们希望FDSP能够为复杂疾病的新型易感位点的鉴定提供帮助。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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