首页> 美国卫生研究院文献>Frontiers in Neuroscience >Exosomes and Homeostatic Synaptic Plasticity Are Linked to Each other and to Huntingtons Parkinsons and Other Neurodegenerative Diseases by Database-Enabled Analyses of Comprehensively Curated Datasets
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Exosomes and Homeostatic Synaptic Plasticity Are Linked to Each other and to Huntingtons Parkinsons and Other Neurodegenerative Diseases by Database-Enabled Analyses of Comprehensively Curated Datasets

机译:外泌体和体内稳态突触可塑性通过数据库全面分析的数据集相互关联并与亨廷顿氏病帕金森氏病和其他神经退行性疾病联系在一起

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摘要

Huntington's disease (HD) is a progressive and autosomal dominant neurodegeneration caused by CAG expansion in the huntingtin gene (HTT), but the pathophysiological mechanism of mutant HTT (mHTT) remains unclear. To study HD using systems biological methodologies on all published data, we undertook the first comprehensive curation of two key PubMed HD datasets: perturbation genes that impact mHTT-driven endpoints and therefore are putatively linked causally to pathogenic mechanisms, and the protein interactome of HTT that reflects its biology. We perused PubMed articles containing co-citation of gene IDs and MeSH terms of interest to generate mechanistic gene sets for iterative enrichment analyses and rank ordering. The HD Perturbation database of 1,218 genes highly overlaps the HTT Interactome of 1,619 genes, suggesting links between normal HTT biology and mHTT pathology. These two HD datasets are enriched for protein networks of key genes underlying two mechanisms not previously implicated in HD nor in each other: exosome synaptic functions and homeostatic synaptic plasticity. Moreover, proteins, possibly including HTT, and miRNA detected in exosomes from a wide variety of sources also highly overlap the HD datasets, suggesting both mechanistic and biomarker links. Finally, the HTT Interactome highly intersects protein networks of pathogenic genes underlying Parkinson's, Alzheimer's and eight non-HD polyglutamine diseases, ALS, and spinal muscular atrophy. These protein networks in turn highly overlap the exosome and homeostatic synaptic plasticity gene sets. Thus, we hypothesize that HTT and other neurodegeneration pathogenic genes form a large interlocking protein network involved in exosome and homeostatic synaptic functions, particularly where the two mechanisms intersect. Mutant pathogenic proteins cause dysfunctions at distinct points in this network, each altering the two mechanisms in specific fashion that contributes to distinct disease pathologies, depending on the gene mutation and the cellular and biological context. This protein network is rich with drug targets, and exosomes may provide disease biomarkers, thus enabling drug discovery. All the curated datasets are made available for other investigators. Elucidating the roles of pathogenic neurodegeneration genes in exosome and homeostatic synaptic functions may provide a unifying framework for the age-dependent, progressive and tissue selective nature of multiple neurodegenerative diseases.
机译:亨廷顿舞蹈病(HD)是亨廷顿基因(HTT)中CAG扩展引起的进行性和常染色体显性神经变性,但突变型HTT(mHTT)的病理生理机制仍不清楚。为了使用系统生物学方法对所有公开的数据研究HD,我们对两个关键的PubMed HD数据集进行了首次全面管理:扰动基因,这些基因影响mHTT驱动的终点,因此可能与致病机制有因果关系,而HTT的蛋白质相互作用组反映其生物学。我们仔细阅读了PubMed文章,其中包含对基因ID和MeSH感兴趣术语的共同引用,以生成用于迭代富集分析和等级排序的机械基因集。 1,218个基因的高清摄动数据库与1,619个基因的HTT相互作用组高度重叠,这表明正常的HTT生物学与mHTT病理之间存在联系。这两个HD数据集丰富了关键基因的蛋白质网络,这些蛋白质是基于以下两种机制的,这些机制先前并未涉及HD或彼此无关:外来体突触功能和稳态突触可塑性。此外,从各种来源的外来体中检测到的蛋白质(可能包括HTT)和miRNA也与HD数据集高度重叠,这提示了机理和生物标记之间的联系。最后,HTT Interactome与帕金森氏症,阿尔茨海默氏症和八种非HD多聚谷氨酰胺病,ALS和脊髓性肌萎缩症的致病基因的蛋白质网络高度相交。这些蛋白质网络反过来高度重叠了外泌体和稳态突触可塑性基因集。因此,我们假设HTT和其他神经退行性病原性基因形成了一个大型的互锁蛋白质网络,该网络涉及外来体和稳态突触功能,特别是在两种机制相交的地方。突变的致病蛋白会在该网络的不同位置导致功能障碍,每个都以特定的方式改变这两种机制,这取决于基因突变以及细胞和生物学环境,从而导致不同的疾病病理。该蛋白质网络富含药物靶标,外泌体可能提供疾病生物标志物,从而使药物发现成为可能。所有策划的数据集都可供其他研究人员使用。阐明致病性神经退行性基因在外来体和稳态突触功能中的作用可能为多种神经退行性疾病的年龄依赖性,进行性和组织选择性性质提供统一的框架。

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