基于纳米孔的随机基因组取样用于术中分子诊断。

IF 10.4 1区 生物学 Q1 GENETICS & HEREDITY
Francesco E Emiliani, Abdol Aziz Ould Ismail, Edward G Hughes, Gregory J Tsongalis, George J Zanazzi, Chun-Chieh Lin
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引用次数: 0

摘要

背景:中枢神经系统肿瘤是最致命的癌症之一。定制神经外科切除策略的一个关键因素取决于特定的肿瘤类型。然而,术前肿瘤诊断并不常见,术中基于形态学的诊断仍然具有挑战性。尽管最近在脑肿瘤术中甲基化分类方面取得了进展,但准确性可能会受到肿瘤纯度低的影响。拷贝数变异(CNVs)在癌症中几乎无处不在,为诊断提供了高度敏感的分子生物标志物。这些定量的基因组改变提供了对失调的致癌途径的洞察,并可以揭示分子治疗的潜在靶点。方法:我们开发了iSCORED,这是一种一步随机基因组DNA重建方法,可实现全基因组CNVs的高效,无偏量化。通过将多个基因组片段连接到长reads中,该方法利用低通测序在1小时内生成大约1-2百万个基因组片段。该方法允许以50 kb的基因组分辨率进行超快速高分辨率CNV分析。此外,同步甲基化分析使脑肿瘤甲基化分类和鉴定扩增癌基因中的启动子甲基化,提供了一种综合的诊断方法。结果:在我们的26例恶性脑肿瘤回顾性队列中,与临床验证的检测方法(如下一代测序和染色体微阵列)相比,iSCORED在CNV检测中显示出100%的一致性,包括染色体改变和癌基因扩增。此外,我们验证了iSCORED在15种诊断上具有挑战性的原发性脑肿瘤中的实时适用性,在检测异常CNV检测方面实现了100%的一致性,包括诊断染色体增益/损失和癌基因扩增(10/10)。其中,15个脑肿瘤甲基化分类中有14个与最终病理诊断一致。这种简化的工作流程-从组织到达到自动生成CNV和甲基化报告-可以在105分钟内完成。结论:iSCORED管道代表了第一种能够在术中时间范围内进行高分辨率CNV检测的方法。通过结合CNV检测和甲基化分类,iSCORED提供了一种快速、全面的分子诊断工具,可以为快速的临床决策提供信息。综合方法不仅提高了肿瘤诊断的准确性,还优化了手术计划并确定了潜在的分子治疗方法,所有这些都在关键的术中时间框架内进行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanopore-based random genomic sampling for intraoperative molecular diagnosis.

Background: Central nervous system tumors are among the most lethal types of cancer. A critical factor for tailored neurosurgical resection strategies depends on specific tumor types. However, it is uncommon to have a preoperative tumor diagnosis, and intraoperative morphology-based diagnosis remains challenging. Despite recent advances in intraoperative methylation classifications of brain tumors, accuracy may be compromised by low tumor purity. Copy number variations (CNVs), which are almost ubiquitous in cancer, offer highly sensitive molecular biomarkers for diagnosis. These quantitative genomic alterations provide insight into dysregulated oncogenic pathways and can reveal potential targets for molecular therapies.

Methods: We develop iSCORED, a one-step random genomic DNA reconstruction method that enables efficient, unbiased quantification of genome-wide CNVs. By concatenating multiple genomic fragments into long reads, the method leverages low-pass sequencing to generate approximately 1-2 million genomic fragments within 1 h. This approach allows for ultrafast high-resolution CNV analysis at a genomic resolution of 50 kb. In addition, concurrent methylation profiling enables brain tumor methylation classification and identifies promoter methylation in amplified oncogenes, providing an integrated diagnostic approach.

Results: In our retrospective cohort of 26 malignant brain tumors, iSCORED demonstrated 100% concordance in CNV detection, including chromosomal alterations and oncogene amplifications, when compared to clinically validated assays such as Next-Generation Sequencing and Chromosomal Microarray. Furthermore, we validated iSCORED's real-time applicability in 15 diagnostically challenging primary brain tumors, achieving 100% concordance in detecting aberrant CNV detection, including diagnostic chromosomal gains/losses and oncogene amplifications (10/10). Of these, 14 out of 15 brain tumor methylation classifications aligned with final pathological diagnoses. This streamlined workflow-from tissue arrival to automatic generation of CNV and methylation reports-can be completed within 105 min.

Conclusions: The iSCORED pipeline represents the first method capable of high-resolution CNV detection within the intraoperative timeframe. By combining CNV detection and methylation classification, iSCORED provides a rapid and comprehensive molecular diagnostic tool that can inform rapid clinical decision. The integrated approach not only enhances the accuracy of tumor diagnosis but also optimizes surgical planning and identifies potential molecular therapies, all within the critical intraoperative timeframe.

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来源期刊
Genome Medicine
Genome Medicine GENETICS & HEREDITY-
CiteScore
20.80
自引率
0.80%
发文量
128
审稿时长
6-12 weeks
期刊介绍: Genome Medicine is an open access journal that publishes outstanding research applying genetics, genomics, and multi-omics to understand, diagnose, and treat disease. Bridging basic science and clinical research, it covers areas such as cancer genomics, immuno-oncology, immunogenomics, infectious disease, microbiome, neurogenomics, systems medicine, clinical genomics, gene therapies, precision medicine, and clinical trials. The journal publishes original research, methods, software, and reviews to serve authors and promote broad interest and importance in the field.
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