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首页> 外文期刊>Scientific reports. >In-depth comparison of somatic point mutation callers based on different tumor next-generation sequencing depth data
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In-depth comparison of somatic point mutation callers based on different tumor next-generation sequencing depth data

机译:深入基于不同肿瘤下一代测序深度数据的体细胞点突变呼叫者比较

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摘要

Four popular somatic single nucleotide variant (SNV) calling methods (Varscan, SomaticSniper, Strelka and MuTect2) were carefully evaluated on the real whole exome sequencing (WES, depth of ~50X) and ultra-deep targeted sequencing (UDT-Seq, depth of ~370X) data. The four tools returned poor consensus on candidates (only 20% of calls were with multiple hits by the callers). For both WES and UDT-Seq, MuTect2 and Strelka obtained the largest proportion of COSMIC entries as well as the lowest rate of dbSNP presence and high-alternative-alleles-in-control calls, demonstrating their superior sensitivity and accuracy. Combining different callers does increase reliability of candidates, but narrows the list down to very limited range of tumor read depth and variant allele frequency. Calling SNV on UDT-Seq data, which were of much higher read-depth, discovered additional true-positive variations, despite an even more tremendous growth in false positive predictions. Our findings not only provide valuable benchmark for state-of-the-art SNV calling methods, but also shed light on the access to more accurate SNV identification in the future.
机译:仔细评估四种普遍的体细胞单核苷酸变种(SNV)呼叫方法(Varscan,Somaticsniper,Strelka和Mutect2),对真实的整体测序(WES,深度为〜50x)和超深针对性测序(UDT-SEQ,深度〜370x)数据。四个工具对候选人的共识恢复了不良共识(只有20%的电话是呼叫者多次命中)。对于WES和UDT-SEQ,MUTECT2和Strelka获得了最大比例的宇宙条目以及DBSNP存在的最低速度和高替代 - 等位基因呼叫,展示了它们的优异敏感性和准确性。结合不同的呼叫者确实提高了候选者的可靠性,但是将列表缩小到非常有限的肿瘤读取深度和变异等位基因频率。在UDT-SEQ数据上调用SNV,这是更高的读取深度,发现了额外的真正变化,尽管虚假积极预测更大增长。我们的调查结果不仅为最先进的SNV呼叫方法提供有价值的基准,而且还可以在未来获得更准确的SNV识别。

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