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评估长读长读纳米孔测序在快速、高效表征移动元件插入方面的效用。

Assessing the utility of long-read nanopore sequencing for rapid and efficient characterization of mobile element insertions.

机构信息

Yorkshire and North East Genomic Laboratory Hub, Central Lab, St. James's University Hospital, Leeds, LS9 7TF, UK.

Leeds Institute of Medical Research, University of Leeds, St. James's University Hospital, Leeds, LS9 7TF, UK.

出版信息

Lab Invest. 2021 Apr;101(4):442-449. doi: 10.1038/s41374-020-00489-y. Epub 2020 Sep 28.

Abstract

Short-read next generation sequencing (NGS) has become the predominant first-line technique used to diagnose patients with rare genetic conditions. Inherent limitations of short-read technology, notably for the detection and characterization of complex insertion-containing variants, are offset by the ability to concurrently screen many disease genes. "Third-generation" long-read sequencers are increasingly being deployed as an orthogonal adjunct technology, but their full potential for molecular genetic diagnosis has yet to be exploited. Here, we describe three diagnostic cases in which pathogenic mobile element insertions were refractory to characterization by short-read sequencing. To validate the accuracy of the long-read technology, we first used Sanger sequencing to confirm the integration sites and derive curated benchmark sequences of the variant-containing alleles. Long-read nanopore sequencing was then performed on locus-specific amplicons. Pairwise comparison between these data and the previously determined benchmark alleles revealed 100% identity of the variant-containing sequences. We demonstrate a number of technical advantages over existing wet-laboratory approaches, including in silico size selection of a mixed pool of amplification products, and the relative ease with which an automated informatics workflow can be established. Our findings add to a growing body of literature describing the diagnostic utility of long-read sequencing.

摘要

短读次世代测序(NGS)已成为诊断罕见遗传疾病患者的主要一线技术。短读技术的固有局限性,尤其是对包含复杂插入的变体的检测和特征描述,被其同时筛查许多疾病基因的能力所弥补。“第三代”长读测序仪越来越多地被用作正交辅助技术,但它们在分子遗传学诊断方面的全部潜力尚未得到充分利用。在这里,我们描述了三个诊断病例,其中致病性移动元件插入难以通过短读测序进行特征描述。为了验证长读技术的准确性,我们首先使用 Sanger 测序来确认整合位点,并推导含变异等位基因的经校对的基准序列。然后在特定于基因座的扩增子上进行长读纳米孔测序。这些数据与之前确定的基准等位基因的两两比较显示,变异序列的一致性为 100%。与现有湿实验室方法相比,我们展示了许多技术优势,包括对扩增产物混合池的计算大小选择,以及可以相对轻松地建立自动化信息学工作流程。我们的发现增加了越来越多描述长读测序诊断效用的文献。

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