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下一代测序技术在遗传性疾病分子诊断中的应用。

Application of next generation sequencing to molecular diagnosis of inherited diseases.

作者信息

Zhang Wei, Cui Hong, Wong Lee-Jun C

机构信息

Department of Molecular and Human Genetics, Baylor College of Medicine, One Baylor Plaza, NAB 2015, Houston, TX, 77030, USA.

出版信息

Top Curr Chem. 2014;336:19-45. doi: 10.1007/128_2012_325.

Abstract

Recent development of high throughput, massively parallel sequencing (MPS or next generation sequencing, NGS) technology has revolutionized the molecular diagnosis of human genetic disease. The ability to generate enormous amount of sequence data in a short time at an affordable cost makes this approach ideal for a wide range of applications from sequencing a group of candidate genes, all coding regions (known as exome sequencing) to the entire human genome. The technology brings about an unprecedented application to the identification of the molecular basis of hard-to-diagnose genetic disorders. This chapter reviews the up-to-date published application of next generation sequencing in clinical molecular diagnostic laboratories. We also emphasize the various target gene enrichment methods and their advantages and shortcomings. Obstacles to compliance with regulatory authorities like CLIA/CAP in clinical settings are also briefly discussed.

摘要

高通量、大规模平行测序(MPS或下一代测序,NGS)技术的最新发展彻底改变了人类遗传疾病的分子诊断。能够在短时间内以可承受的成本生成大量序列数据,使得这种方法适用于从对一组候选基因进行测序、所有编码区域(即外显子组测序)到整个人类基因组的广泛应用。该技术为难以诊断的遗传疾病分子基础的鉴定带来了前所未有的应用。本章回顾了下一代测序在临床分子诊断实验室中的最新应用。我们还强调了各种目标基因富集方法及其优缺点。还简要讨论了在临床环境中符合CLIA/CAP等监管机构要求的障碍。

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