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通过 SMRT 测序检测 SAMD12 中的长插入变异:长读长全基因组测序对重复扩展疾病的影响。

Detecting a long insertion variant in SAMD12 by SMRT sequencing: implications of long-read whole-genome sequencing for repeat expansion diseases.

机构信息

Department of Human Genetics, Yokohama City University Graduate School of Medicine, Yokohama, 236-0004, Japan.

Department of Neurology, University of Occupational and Environmental Health School of Medicine, Kitakyushu, 807-8555, Japan.

出版信息

J Hum Genet. 2019 Mar;64(3):191-197. doi: 10.1038/s10038-018-0551-7. Epub 2018 Dec 17.

Abstract

Long-read sequencing technology is now capable of reading single-molecule DNA with an average read length of more than 10 kb, fully enabling the coverage of large structural variations (SVs). This advantage may pave the way for the detection of unprecedented SVs as well as repeat expansions. Pathogenic SVs of only known genes used to be selectively analyzed based on prior knowledge of target DNA sequence. The unbiased application of long-read whole-genome sequencing (WGS) for the detection of pathogenic SVs has just begun. Here, we apply PacBio SMRT sequencing in a Japanese family with benign adult familial myoclonus epilepsy (BAFME). Our SV selection of low-coverage WGS data (7×) narrowed down the candidates to only six SVs in a 7.16-Mb region of the BAFME1 locus and correctly determined an approximately 4.6-kb SAMD12 intronic repeat insertion, which is causal of BAFME1. These results indicate that long-read WGS is potentially useful for evaluating all of the known SVs in a genome and identifying new disease-causing SVs in combination with other genetic methods to resolve the genetic causes of currently unexplained diseases.

摘要

长读测序技术现在能够读取平均读长超过 10kb 的单分子 DNA,完全能够覆盖大片段结构变异 (SV)。这一优势可能为检测前所未有的 SV 和重复扩展铺平道路。以前,仅基于对目标 DNA 序列的先验知识,对已知基因的致病性 SV 进行有选择的分析。长读全基因组测序 (WGS) 用于检测致病性 SV 的无偏应用才刚刚开始。在这里,我们在一个良性成人家族性肌阵挛癫痫 (BAFME) 的日本家庭中应用 PacBio SMRT 测序。我们对低覆盖 WGS 数据 (7×) 的 SV 选择将候选区域缩小到 BAFME1 基因座的 7.16Mb 区域内的仅六个 SV,并正确确定了约 4.6kb 的 SAMD12 内含子重复插入,这是 BAFME1 的致病原因。这些结果表明,长读 WGS 可能有助于评估基因组中所有已知的 SV,并与其他遗传方法相结合,鉴定新的致病 SV,以解决目前无法解释的疾病的遗传原因。

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