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What Does Take to Identify the Signal From the Noise in Molecular Profiling of Tumors?

机译:如何识别肿瘤分子谱中的噪声信号?

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摘要

Cancer is a complex, heterogeneous disease that is driven by continually evolving genomic changes. Our current efforts to identify and the cure or demise of patients has utilized snap shots of DNA, RNA, proteins, and/or proteinucleic acid interactions among numerous assays. For example, sequencing genomes or exomes distinguishes germline variants from somatic mutations as one step toward identifying nucleotide changes that are truly driving mutations. However, these assays identify very large numbers of variants and substantially reducing the noise requires considering the potential impact of variants (missense, non-sense, synonomous), quality of the call, prevalence of mutations in tumor versus normal cells, and whether a gene carrying a mutation is even expressed. Consequently, molecular profiling of tumors, benefits from data obtained from several different kinds of DNA sequencing-based assays. Using data from paired tumor and normal samples we will show an example workflow that combines exome and transcriptome sequencing to identify putative driver mutations that display high signal for being impactful in cancer.
机译:癌症是一种复杂的异质性疾病,由不断发展的基因组变化驱动。我们目前用于鉴定和治愈或消灭患者的工作已利用众多测定方法中的DNA,RNA,蛋白质和/或蛋白质/核酸相互作用的快照。例如,测序基因组或外显子组将种系变异体与体细胞突变区分开来,这是朝着鉴定真正驱动突变的核苷酸变化迈出的一步。但是,这些检测方法可识别出大量的变异,并且要大幅降低噪音,需要考虑变异的潜在影响(错义,无义,同义),检出质量,肿瘤与正常细胞中突变的发生率以及是否存在基因甚至携带突变。因此,肿瘤的分子谱分析得益于从几种不同类型的基于DNA测序的分析中获得的数据。使用来自配对的肿瘤和正常样品的数据,我们将展示一个示例工作流程,该工作流程结合了外显子组和转录组测序来识别推定的驱动程序突变,这些突变显示出对癌症有影响的高信号。

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