The contribution of silencer variants to human diseases

IF 10.1 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Di Huang, Ivan Ovcharenko
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Abstract

Although disease-causal genetic variants have been found within silencer sequences, we still lack a comprehensive analysis of the association of silencers with diseases. Here, we profiled GWAS variants in 2.8 million candidate silencers across 97 human samples derived from a diverse panel of tissues and developmental time points, using deep learning models. We show that candidate silencers exhibit strong enrichment in disease-associated variants, and several diseases display a much stronger association with silencer variants than enhancer variants. Close to 52% of candidate silencers cluster, forming silencer-rich loci, and, in the loci of Parkinson’s-disease-hallmark genes TRIM31 and MAL, the associated SNPs densely populate clustered candidate silencers rather than enhancers displaying an overall twofold enrichment in silencers versus enhancers. The disruption of apoptosis in neuronal cells is associated with both schizophrenia and bipolar disorder and can largely be attributed to variants within candidate silencers. Our model permits a mechanistic explanation of causative SNP effects by identifying altered binding of tissue-specific repressors and activators, validated with a 70% of directional concordance using SNP-SELEX. Narrowing the focus of the analysis to individual silencer variants, experimental data confirms the role of the rs62055708 SNP in Parkinson’s disease, rs2535629 in schizophrenia, and rs6207121 in type 1 diabetes. In summary, our results indicate that advances in deep learning models for the discovery of disease-causal variants within candidate silencers effectively “double” the number of functionally characterized GWAS variants. This provides a basis for explaining mechanisms of action and designing novel diagnostics and therapeutics.
沉默变体对人类疾病的影响
虽然已经在沉默子序列中发现了致病基因变异,但我们仍然缺乏对沉默子与疾病相关性的全面分析。在这里,我们利用深度学习模型分析了来自不同组织和发育时间点的 97 个人类样本中 280 万个候选沉默子中的 GWAS 变异。我们的研究表明,候选沉默子在疾病相关变异中表现出很强的富集性,而且有几种疾病与沉默子变异的关联要比与增强子变异的关联强得多。在帕金森病标志基因 TRIM31 和 MAL 的基因位点中,相关 SNPs 密集地分布在聚类的候选沉默子上,而不是增强子上。神经细胞凋亡的中断与精神分裂症和躁狂症都有关联,这在很大程度上可归因于候选沉默子中的变异。我们的模型通过识别组织特异性抑制因子和激活因子结合的改变,对SNP的致病效应进行了机理解释,并利用SNP-SELEX验证了70%的方向一致性。将分析重点缩小到单个沉默子变异上,实验数据证实了 rs62055708 SNP 在帕金森病中的作用、rs2535629 在精神分裂症中的作用以及 rs6207121 在 1 型糖尿病中的作用。总之,我们的研究结果表明,深度学习模型在发现候选沉默子中的致病变异方面取得了进展,有效地 "加倍 "了具有功能特征的 GWAS 变异的数量。这为解释作用机制以及设计新型诊断和治疗方法提供了基础。
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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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