Multiomic analyses direct hypotheses for Creutzfeldt-Jakob disease risk genes.

IF 10.6 1区 医学 Q1 CLINICAL NEUROLOGY
Brain Pub Date : 2025-01-27 DOI:10.1093/brain/awaf032
Fahri Küçükali, Elizabeth Hill, Tijs Watzeels, Holger Hummerich, Tracy Campbell, Lee Darwent, Steven Collins, Christiane Stehmann, Gabor G Kovacs, Michael D Geschwind, Karl Frontzek, Herbert Budka, Ellen Gelpi, Adriano Aguzzi, Sven J van der Lee, Cornelia M van Duijn, Pawel P Liberski, Miguel Calero, Pascual Sanchez-Juan, Elodie Bouaziz-Amar, Jean-Louis Laplanche, Stéphane Haïk, Jean-Phillipe Brandel, Angela Mammana, Sabina Capellari, Anna Poleggi, Anna Ladogana, Dorina Tiple, Saima Zafar, Stephanie Booth, Gerard H Jansen, Aušrinė Areškevičiūtė, Eva Løbner Lund, Katie Glisic, Piero Parchi, Peter Hermann, Inga Zerr, Jiri Safar, Pierluigi Gambetti, Brian S Appleby, John Collinge, Kristel Sleegers, Simon Mead
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引用次数: 0

Abstract

Prions are assemblies of misfolded prion protein that cause several fatal and transmissible neurodegenerative diseases, with the most common phenotype in humans being sporadic Creutzfeldt-Jakob disease (sCJD). Aside from variation of the prion protein itself, molecular risk factors are not well understood. Prion and prion-like mechanisms are thought to underpin common neurodegenerative disorders meaning that the elucidation of mechanisms could have broad relevance. Herein we sought to further develop our understanding of the factors that confer risk of sCJD using a systematic gene prioritization and functional interpretation pipeline based on multiomic integrative analyses. We integrated the published sCJD genome-wide association study (GWAS) summary statistics with publicly available bulk brain and brain cell type gene and protein expression datasets. We performed multiple transcriptome and proteome-wide association studies (TWAS & PWAS) and Bayesian genetic colocalization analyses between sCJD risk association signals and multiple brain molecular quantitative trait loci signals. We then applied our systematic gene prioritization pipeline on the obtained results and nominated prioritized sCJD risk genes with risk-associated molecular mechanisms in a transcriptome and proteome-wide manner. Genetic upregulation of both gene and protein expression of syntaxin-6 (STX6) in the brain was associated with sCJD risk in multiple datasets, with a risk-associated gene expression regulation specific to oligodendrocytes. Similarly, increased gene and protein expression of protein disulfide isomerase family A member 4 (PDIA4), involved in the unfolded protein response, was linked to increased disease risk, particularly in excitatory neurons. Protein expression of mesencephalic astrocyte derived neurotrophic factor (MANF), involved in protection against endoplasmic reticulum stress and sulfatide binding (linking to the enzyme in the final step of sulfatide synthesis, encoded by sCJD risk gene GAL3ST1), was identified as protective against sCJD. In total 32 genes were prioritized into two tiers based on the level of evidence and confidence for further studies. This study provides insights into the genetically-associated molecular mechanisms underlying sCJD susceptibility and prioritizes several specific hypotheses for exploration beyond the prion protein itself and beyond the previously highlighted sCJD risk loci through the newly prioritized sCJD risk genes and mechanisms. These findings highlight the importance of glial cells, sulfatides and the excitatory neuron unfolded protein response in sCJD pathogenesis.

朊病毒是折叠错误的朊病毒蛋白的集合体,可导致多种致命的、可传播的神经退行性疾病,其中人类最常见的表型是散发性克雅氏病(sCJD)。除了朊病毒蛋白本身的变异外,分子风险因素尚不十分清楚。朊病毒和朊病毒样机制被认为是常见神经退行性疾病的基础,这意味着机制的阐明可能具有广泛的意义。在此,我们试图利用基于多组学综合分析的系统基因优先排序和功能解释管道,进一步加深我们对sCJD风险因素的理解。我们将已发表的 sCJD 全基因组关联研究 (GWAS) 统计摘要与可公开获得的大脑和脑细胞类型基因和蛋白质表达数据集进行了整合。我们进行了多项转录组和蛋白质组关联研究(TWAS 和 PWAS),并在 sCJD 风险关联信号和多个脑分子定量性状位点信号之间进行了贝叶斯遗传共定位分析。然后,我们将系统化的基因优先排序管道应用于获得的结果,并以转录组和蛋白质组的方式提名了具有风险相关分子机制的优先 sCJD 风险基因。在多个数据集中,大脑中句法蛋白-6(STX6)基因和蛋白表达的遗传上调与 sCJD 风险相关,风险相关基因表达调控特异于少突胶质细胞。同样,参与未折叠蛋白反应的蛋白二硫异构酶家族A成员4(PDIA4)基因和蛋白表达的增加也与疾病风险的增加有关,尤其是在兴奋性神经元中。间脑星形胶质细胞衍生神经营养因子(MANF)参与内质网应激保护和硫化物结合(与硫化物合成最后一步的酶连接,由 sCJD 风险基因 GAL3ST1 编码),其蛋白表达被确定为对 sCJD 有保护作用。根据进一步研究的证据和可信度,共有 32 个基因被分为两级。这项研究深入揭示了与基因相关的 sCJD 易感性分子机制,并通过新确定的 sCJD 风险基因和机制,优先探索了朊病毒蛋白本身之外的几个特定假说,以及之前强调的 sCJD 风险基因位点之外的几个特定假说。这些发现凸显了神经胶质细胞、硫化物和兴奋性神经元折叠蛋白反应在 sCJD 发病机制中的重要性。
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来源期刊
Brain
Brain 医学-临床神经学
CiteScore
20.30
自引率
4.10%
发文量
458
审稿时长
3-6 weeks
期刊介绍: Brain, a journal focused on clinical neurology and translational neuroscience, has been publishing landmark papers since 1878. The journal aims to expand its scope by including studies that shed light on disease mechanisms and conducting innovative clinical trials for brain disorders. With a wide range of topics covered, the Editorial Board represents the international readership and diverse coverage of the journal. Accepted articles are promptly posted online, typically within a few weeks of acceptance. As of 2022, Brain holds an impressive impact factor of 14.5, according to the Journal Citation Reports.
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