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A genome-wide approach for detecting novel insertion-deletion variants of mid-range size

机译:用于检测中等大小的新型插入-缺失变异的全基因组方法

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摘要

We present SWAN, a statistical framework for robust detection of genomic structural variants in next-generation sequencing data and an analysis of mid-range size insertion and deletions (<10 Kb) for whole genome analysis and DNA mixtures. To identify these mid-range size events, SWAN collectively uses information from read-pair, read-depth and one end mapped reads through statistical likelihoods based on Poisson field models. SWAN also uses soft-clip/split read remapping to supplement the likelihood analysis and determine variant boundaries. The accuracy of SWAN is demonstrated by in silico spike-ins and by identification of known variants in the NA12878 genome. We used SWAN to identify a series of novel set of mid-range insertion/deletion detection that were confirmed by targeted deep re-sequencing. An R package implementation of SWAN is open source and freely available.
机译:我们提出了SWAN,这是一个用于可靠地检测下一代测序数据中的基因组结构变异的统计框架,以及用于全基因组分析和DNA混合物的中等大小插入和缺失(<10 Kb)分析。为了识别这些中等规模的事件,SWAN通过基于Poisson场模型的统计似然性,共同使用来自读取对,读取深度和末端映射读取的信息。 SWAN还使用软剪辑/拆分读取重新映射来补充可能性分析并确定变体边界。 SWAN的准确性通过计算机模拟插入和鉴定NA12878基因组中的已知变体来证明。我们使用SWAN识别了一系列新颖的中距离插入/缺失检测集,这些检测结果均已通过针对性的深度重测序得到了证实。 SWAN的R包实现是开源的,可免费获得。

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