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从靶向高通量测序数据中准确、精确地识别 CNV。

Accurate and exact CNV identification from targeted high-throughput sequence data.

机构信息

Department of Genome Sciences, University of Washington, Seattle, 98195-7720, USA.

出版信息

BMC Genomics. 2011 Apr 12;12:184. doi: 10.1186/1471-2164-12-184.

Abstract

BACKGROUND

Massively parallel sequencing of barcoded DNA samples significantly increases screening efficiency for clinically important genes. Short read aligners are well suited to single nucleotide and indel detection. However, methods for CNV detection from targeted enrichment are lacking. We present a method combining coverage with map information for the identification of deletions and duplications in targeted sequence data.

RESULTS

Sequencing data is first scanned for gains and losses using a comparison of normalized coverage data between samples. CNV calls are confirmed by testing for a signature of sequences that span the CNV breakpoint. With our method, CNVs can be identified regardless of whether breakpoints are within regions targeted for sequencing. For CNVs where at least one breakpoint is within targeted sequence, exact CNV breakpoints can be identified. In a test data set of 96 subjects sequenced across ~1 Mb genomic sequence using multiplexing technology, our method detected mutations as small as 31 bp, predicted quantitative copy count, and had a low false-positive rate.

CONCLUSIONS

Application of this method allows for identification of gains and losses in targeted sequence data, providing comprehensive mutation screening when combined with a short read aligner.

摘要

背景

对条形码 DNA 样本进行大规模平行测序可显著提高对临床重要基因的筛选效率。短读序列比对器非常适合单核苷酸和插入缺失检测。但是,缺乏针对靶向富集的 CNV 检测方法。我们提出了一种结合覆盖度和图谱信息的方法,用于识别靶向序列数据中的缺失和重复。

结果

首先使用样本间归一化覆盖度数据的比较来扫描测序数据中的增益和损耗。通过测试跨越 CNV 断点的序列特征来确认 CNV 调用。使用我们的方法,无论断点是否位于测序靶向区域内,都可以识别 CNV。对于至少一个断点位于靶向序列内的 CNV,可以识别出确切的 CNV 断点。在使用多重化技术对 96 个样本进行约 1Mb 基因组序列测序的测试数据集上,我们的方法检测到了小至 31bp 的突变,预测了定量拷贝数,并具有较低的假阳性率。

结论

该方法的应用可识别靶向序列数据中的增益和损耗,与短读序列比对器结合使用时可提供全面的突变筛选。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2278/3088570/f3d6a21251ff/1471-2164-12-184-1.jpg

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