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全外显子测序检测临床相关拷贝数变异。

Detection of clinically relevant copy number variants with whole-exome sequencing.

机构信息

Department of Human Genetics, Nijmegen Centre for Molecular Life Sciences, Institute for Genetic and Metabolic Disease, Radboud University Medical Centre, Nijmegen, 6500 HB, The Netherlands.

出版信息

Hum Mutat. 2013 Oct;34(10):1439-48. doi: 10.1002/humu.22387. Epub 2013 Aug 30.

DOI:10.1002/humu.22387
PMID:23893877
Abstract

Copy number variation (CNV) is a common source of genetic variation that has been implicated in many genomic disorders. This has resulted in the widespread application of genomic microarrays as a first-tier diagnostic tool for CNV detection. More recently, whole-exome sequencing (WES) has been proven successful for the detection of clinically relevant point mutations and small insertion-deletions exome wide. We evaluate the utility of short-read WES (SOLiD 5500xl) to detect clinically relevant CNVs in DNA from 10 patients with intellectual disability and compare these results to data from two independent high-resolution microarrays. Eleven of the 12 clinically relevant CNVs were detected via read-depth analysis of WES data; a heterozygous single-exon deletion remained undetected by all algorithms evaluated. Although the detection power of WES for small CNVs currently does not match that of high-resolution microarray platforms, we show that the majority (88%) of rare coding CNVs containing three or more exons are successfully identified by WES. These results show that the CNV detection resolution of WES is comparable to that of medium-resolution genomic microarrays commonly used as clinical assays. The combined detection of point mutations, indels, and CNVs makes WES a very attractive first-tier diagnostic test for genetically heterogeneous disorders.

摘要

拷贝数变异(CNV)是一种常见的遗传变异来源,与许多基因组疾病有关。这导致了基因组微阵列作为 CNV 检测的一线诊断工具的广泛应用。最近,全外显子组测序(WES)已被证明在检测临床相关点突变和小插入缺失方面具有广泛的应用。我们评估了短读长 WES(SOLiD 5500xl)在检测 10 名智力障碍患者 DNA 中临床相关 CNV 的效用,并将这些结果与来自两个独立高分辨率微阵列的数据进行比较。通过 WES 数据的读深度分析,检测到 12 个临床相关 CNV 中的 11 个;所有评估的算法都未检测到杂合性单外显子缺失。尽管 WES 对小 CNV 的检测能力目前无法与高分辨率微阵列平台相匹配,但我们表明,大多数(88%)包含三个或更多外显子的罕见编码 CNV 都可以通过 WES 成功识别。这些结果表明 WES 的 CNV 检测分辨率与作为临床检测的常用中分辨率基因组微阵列相当。点突变、插入缺失和 CNV 的联合检测使 WES 成为一种非常有吸引力的一线遗传性疾病诊断测试。

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