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Proteomic analysis of Medulloblastoma reveals functional biology with translational potential

机译:髓母细胞瘤的蛋白质组学分析揭示了具有翻译潜力的功能生物学

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摘要

Genomic characterization has begun to redefine diagnostic classifications of cancers. However, it remains a challenge to infer disease phenotypes from genomic alterations alone. To help realize the promise of genomics, we have performed a quantitative proteomics investigation using Stable Isotope Labeling by Amino Acids in Cell Culture (SILAC) and 41 tissue samples spanning the 4 genomically based subgroups of medulloblastoma and control cerebellum. We have identified and quantitated thousands of proteins across these groups and find that we are able to recapitulate the genomic subgroups based upon subgroup restricted and differentially abundant proteins while also identifying subgroup specific protein isoforms. Integrating our proteomic measurements with genomic data, we calculate a poor correlation between mRNA and protein abundance. Using EPIC 850 k methylation array data on the same tissues, we also investigate the influence of copy number alterations and DNA methylation on the proteome in an attempt to characterize the impact of these genetic features on the proteome. Reciprocally, we are able to use the proteome to identify which genomic alterations result in altered protein abundance and thus are most likely to impact biology. Finally, we are able to assemble protein-based pathways yielding potential avenues for clinical intervention. From these, we validate the EIF4F cap-dependent translation pathway as a novel druggable pathway in medulloblastoma. Thus, quantitative proteomics complements genomic platforms to yield a more complete understanding of functional tumor biology and identify novel therapeutic targets for medulloblastoma.Electronic supplementary materialThe online version of this article (10.1186/s40478-018-0548-7) contains supplementary material, which is available to authorized users.
机译:基因组表征已经开始重新定义癌症的诊断分类。然而,仅从基因组改变来推断疾病表型仍然是一个挑战。为了帮助实现基因组学的前景,我们进行了定量蛋白质组学研究,使用细胞培养物中的氨基酸进行稳定同位素标记(SILAC)和41个组织样品,这些样品跨越了成年神经母细胞瘤和小脑对照的4个基于基因组的亚组。我们已经鉴定并定量了这些组中的数千种蛋白质,发现我们能够基于亚组限制性和差异丰富的蛋白质来概括基因组亚组,同时还能鉴定亚组特异性蛋白亚型。将蛋白质组学测量结果与基因组数据整合在一起,我们计算出mRNA与蛋白质丰度之间的相关性较差。使用相同组织上的EPIC 850 k甲基化阵列数据,我们还研究了拷贝数变化和DNA甲基化对蛋白质组的影响,以试图表征这些遗传特征对蛋白质组的影响。相应地,我们能够使用蛋白质组来识别哪些基因组改变会导致蛋白质丰度改变,从而最有可能影响生物学。最后,我们能够组装基于蛋白质的途径,为临床干预提供潜在途径。从这些,我们验证了EIF4F帽依赖性翻译途径是髓母细胞瘤中的一种新型药物途径。因此,定量蛋白质组学是对基因组平台的补充,可以更完整地了解功能性肿瘤生物学并确定髓母细胞瘤的新型治疗靶标。电子补充材料本文的在线版本(10.1186 / s40478-018-0548-7)包含补充材料,可供授权用户使用。

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