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长读长测序与结构变异检测:揭示罕见遗传病中的隐藏基因组

Long-Read Sequencing and Structural Variant Detection: Unlocking the Hidden Genome in Rare Genetic Disorders.

作者信息

Moustakli Efthalia, Christopoulos Panagiotis, Potiris Anastasios, Zikopoulos Athanasios, Mavrogianni Despoina, Karampas Grigorios, Kathopoulis Nikolaos, Anagnostaki Ismini, Domali Ekaterini, Tzallas Alexandros T, Drakakis Peter, Stavros Sofoklis

机构信息

Laboratory of Medical Genetics, Faculty of Medicine, School of Health Sciences, University of Ioannina, 451 10 Ioannina, Greece.

Second Department of Obstetrics and Gynecology, University Hospital "Aretaieion", Medical School, National and Kapodistrian University of Athens, 115 28 Athens, Greece.

出版信息

Diagnostics (Basel). 2025 Jul 17;15(14):1803. doi: 10.3390/diagnostics15141803.

Abstract

Rare genetic diseases are often caused by structural variants (SVs), such as insertions, deletions, duplications, inversions, and complex rearrangements. However, due to the technical limitations of short-read sequencing, these variants remain underdiagnosed. Long-read sequencing technologies, including Oxford Nanopore and Pacific Biosciences high-fidelity (HiFi), have recently advanced to the point that they can accurately find SVs throughout the genome, including in previously unreachable areas like repetitive sequences and segmental duplications. This study underscores the transformative role of long-read sequencing in diagnosing rare diseases, emphasizing the bioinformatics tools designed for detecting and interpreting structural variants (SVs). Comprehensive methods are reviewed, including methylation profiling, RNA-seq, phasing analysis, and long-read sequencing. The effectiveness and applications of well-known tools like Sniffles2, SVIM, and cuteSV are also assessed. Case studies illustrate how this technique has revealed new pathogenic pathways and solved cases that were previously undetected. Along with outlining potential future paths like telomere-to-telomere assemblies and pan-genome integration, we also address existing issues, including cost, clinical validation, and computational complexity. For uncommon genetic illnesses, long-read sequencing has the potential to completely change the molecular diagnostic picture as it approaches clinical adoption.

摘要

罕见遗传病通常由结构变异(SVs)引起,如插入、缺失、重复、倒位和复杂重排。然而,由于短读长测序的技术局限性,这些变异仍未得到充分诊断。包括牛津纳米孔和太平洋生物科学公司的高保真(HiFi)在内的长读长测序技术,最近已经发展到能够在整个基因组中准确找到SVs的程度,包括在以前无法触及的区域,如重复序列和节段性重复。这项研究强调了长读长测序在罕见病诊断中的变革性作用,强调了为检测和解释结构变异(SVs)而设计的生物信息学工具。综述了综合方法,包括甲基化分析、RNA测序、定相分析和长读长测序。还评估了Sniffles2、SVIM和cuteSV等知名工具的有效性和应用。案例研究说明了这项技术如何揭示新的致病途径并解决以前未检测到的病例。在概述端粒到端粒组装和泛基因组整合等潜在的未来路径时,我们也解决了现有问题,包括成本、临床验证和计算复杂性。对于罕见遗传病,随着长读长测序接近临床应用,它有可能彻底改变分子诊断的局面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/02d3/12293859/aebb59ed82a9/diagnostics-15-01803-g001.jpg

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