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用于体细胞结构变异检测的多平台参考资料。

A multi-platform reference for somatic structural variation detection.

作者信息

Espejo Valle-Inclan Jose, Besselink Nicolle J M, de Bruijn Ewart, Cameron Daniel L, Ebler Jana, Kutzera Joachim, van Lieshout Stef, Marschall Tobias, Nelen Marcel, Priestley Peter, Renkens Ivo, Roemer Margaretha G M, van Roosmalen Markus J, Wenger Aaron M, Ylstra Bauke, Fijneman Remond J A, Kloosterman Wigard P, Cuppen Edwin

机构信息

Center for Molecular Medicine and Oncode Institute, UMC Utrecht, Utrecht, the Netherlands.

Hartwig Medical Foundation, Amsterdam, the Netherlands.

出版信息

Cell Genom. 2022 Jun 8;2(6):100139. doi: 10.1016/j.xgen.2022.100139.

Abstract

Accurate detection of somatic structural variation (SV) in cancer genomes remains a challenging problem. This is in part due to the lack of high-quality, gold-standard datasets that enable the benchmarking of experimental approaches and bioinformatic analysis pipelines. Here, we performed somatic SV analysis of the paired melanoma and normal lymphoblastoid COLO829 cell lines using four different sequencing technologies. Based on the evidence from multiple technologies combined with extensive experimental validation, we compiled a comprehensive set of carefully curated and validated somatic SVs, comprising all SV types. We demonstrate the utility of this resource by determining the SV detection performance as a function of tumor purity and sequence depth, highlighting the importance of assessing these parameters in cancer genomics projects. The truth somatic SV dataset as well as the underlying raw multi-platform sequencing data are freely available and are an important resource for community somatic benchmarking efforts.

摘要

准确检测癌症基因组中的体细胞结构变异(SV)仍然是一个具有挑战性的问题。部分原因是缺乏高质量的金标准数据集,无法对实验方法和生物信息学分析流程进行基准测试。在此,我们使用四种不同的测序技术对配对的黑色素瘤和正常淋巴母细胞样COLO829细胞系进行了体细胞SV分析。基于多种技术的证据并结合广泛的实验验证,我们编制了一套全面的、经过精心策划和验证的体细胞SV,包括所有SV类型。我们通过确定SV检测性能与肿瘤纯度和序列深度的函数关系,展示了该资源的实用性,突出了在癌症基因组学项目中评估这些参数的重要性。真实的体细胞SV数据集以及基础的原始多平台测序数据均可免费获取,是社区体细胞基准测试工作的重要资源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e879/9903816/800db616ba86/fx1.jpg

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