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Inference of Tumor Phylogenies with Improved Somatic Mutation Discovery

机译:推断肿瘤系统发生与改进的体细胞突变发现。

摘要

Next-generation sequencing technologies provide a powerful tool for studying genome evolution during progression of advanced diseases such as cancer. Although many recent studies have employed new sequencing technologies to detect mutations across multiple, genetically related tumors, current methods do not exploit available phylogenetic information to improve the accuracy of their variant calls. Here, we present a novel algorithm that uses somatic single nucleotide variations (SNVs) in multiple, related tissue samples as lineage markers for phylogenetic tree reconstruction. Our method then leverages the inferred phylogeny to improve the accuracy of SNV discovery. Experimental analyses demonstrate that our method achieves up to 32% improvement for somatic SNV calling of multiple related samples over the accuracy of GATK's Unified Genotyper, the state of the art multisample SNV caller. © 2013 Springer-Verlag.
机译:下一代测序技术为研究癌症等晚期疾病进展期间的基因组进化提供了强大的工具。尽管最近的许多研究已经采用了新的测序技术来检测多个遗传相关肿瘤中的突变,但当前的方法并未利用可利用的系统发育信息来提高其变异检测的准确性。在这里,我们提出了一种新颖的算法,该算法在多个相关组织样本中使用体细胞单核苷酸变异(SNV)作为谱系标记,以进行系统树重建。然后,我们的方法利用推断的系统发育来提高SNV发现的准确性。实验分析表明,相对于GATK的统一基因型检测仪(最新的多样本SNV调用程序)的准确性,我们的方法对多个相关样本进行体细胞SNV调用最多可提高32%。 ©2013年Springer-Verlag。

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