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首页> 外文期刊>Computational and Structural Biotechnology Journal >SEG - A Software Program for Finding Somatic Copy Number Alterations in Whole Genome Sequencing Data of Cancer
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SEG - A Software Program for Finding Somatic Copy Number Alterations in Whole Genome Sequencing Data of Cancer

机译:SEG-用于在癌症的全基因组测序数据中查找体细胞拷贝数变化的软件程序

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摘要

As next-generation sequencing technology advances and the cost decreases, whole genome sequencing (WGS) has become the preferred platform for the identification of somatic copy number alteration (CNA) events in cancer genomes. To more effectively decipher these massive sequencing data, we developed a software program named SEG, shortened from the word “segment”. SEG utilizes mapped read or fragment density for CNA discovery. To reduce CNA artifacts arisen from sequencing and mapping biases, SEG first normalizes the data by taking the log2-ratio of each tumor density against its matching normal density. SEG then uses dynamic programming to find change-points among a contiguous log2-ratio data series along a chromosome, dividing the chromosome into different segments. SEG finally identifies those segments having CNA. Our analyses with both simulated and real sequencing data indicate that SEG finds more small CNAs than other published software tools.
机译:随着下一代测序技术的发展和成本的降低,全基因组测序(WGS)已成为鉴定癌症基因组中体细胞拷贝数改变(CNA)事件的首选平台。为了更有效地解密这些大量测序数据,我们开发了一个名为SEG的软件程序,该程序从“ segment”一词缩写。 SEG利用映射的读取或片段密度进行CNA发现。为了减少由测序和作图偏倚引起的CNA伪影,SEG首先通过将每种肿瘤密度的log 2 比值与其匹配的正常密度进行对数归一化。然后,SEG使用动态编程在沿染色体的连续log 2 比率数据序列中找到变化点,并将染色体分为不同的片段。 SEG最终确定了具有CNA的细分。我们对模拟和真实测序数据的分析表明SEG比其他已发布的软件工具发现了更多的小型CNA。

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