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多重连接依赖探针扩增法检测循环肿瘤 DNA 中单核苷酸突变的纳米孔技术

Nanopore Identification of Single Nucleotide Mutations in Circulating Tumor DNA by Multiplexed Ligation.

机构信息

Department of Biomedical Engineering, Technion- IIT, Haifa, Israel.

Department of Pathology, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, USA.

出版信息

Clin Chem. 2021 Apr 29;67(5):753-762. doi: 10.1093/clinchem/hvaa328.

Abstract

BACKGROUND

Circulating tumor DNAs (ctDNAs) are highly promising cancer biomarkers, potentially applicable for noninvasive liquid biopsy and disease monitoring. However, to date, sequencing of ctDNAs has proven to be challenging primarily due to small sample size and high background of fragmented cell-free DNAs (cfDNAs) derived from normal cells in the circulation, specifically in early stage cancer.

METHODS

Solid-state nanopores (ssNPs) have recently emerged as a highly efficient tool for single-DNA sensing and analysis. Herein, we present a rapid nanopore genotyping strategy to enable an amplification-free identification and classification of ctDNA mutations. A biochemical ligation detection assay was used for the creation of specific fluorescently-labelled short DNA reporter molecules. Color conjugation with multiple fluorophores enabled a unique multi-color signature for different mutations, offering multiplexing potency. Single-molecule readout of the fluorescent labels was carried out by electro-optical sensing via solid-state nanopores drilled in titanium oxide membranes.

RESULTS

As proof of concept, we utilized our method to detect the presence of low-quantity ERBB2 F310S and PIK3Ca H1047R breast cancer mutations from both plasmids and xenograft mice blood samples. We demonstrated an ability to distinguish between a wild type and a mutated sample, and between the different mutations in the same sample.

CONCLUSIONS

Our method can potentially enable rapid and low cost ctDNA analysis that completely circumvents PCR amplification and library preparation. This approach will thus meet a currently unmet demand in terms of sensitivity, multiplexing and cost, opening new avenues for early diagnosis of cancer.

摘要

背景

循环肿瘤 DNA(ctDNA)是很有前途的癌症生物标志物,可用于非侵入性液体活检和疾病监测。然而,迄今为止,ctDNA 的测序已被证明具有挑战性,主要是由于样本量小,以及来自循环中正常细胞的碎片化无细胞 DNA(cfDNA)背景高,尤其是在早期癌症中。

方法

固态纳米孔(ssNPs)最近已成为一种用于单 DNA 传感和分析的高效工具。在此,我们提出了一种快速纳米孔基因分型策略,可实现无扩增的 ctDNA 突变的识别和分类。使用生物化学连接检测法来创建特定的荧光标记短 DNA 报告分子。通过与多种荧光染料的颜色偶联,为不同的突变提供了独特的多色特征,从而实现了多重检测的潜力。通过在氧化钛膜上钻取固态纳米孔进行电光学传感,实现了对荧光标记物的单分子读出。

结果

作为概念验证,我们利用该方法从质粒和异种移植小鼠的血液样本中检测到了低量 ERBB2 F310S 和 PIK3Ca H1047R 乳腺癌突变。我们证明了区分野生型和突变型样本、以及同一样本中不同突变的能力。

结论

我们的方法可用于快速、低成本的 ctDNA 分析,完全绕过了 PCR 扩增和文库制备。因此,该方法将满足灵敏度、多重检测和成本方面的当前未满足需求,为癌症的早期诊断开辟新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/52a9/7617058/7980d9865100/EMS108582-f001.jpg

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The emerging role of cell-free DNA as a molecular marker for cancer management.游离DNA作为癌症管理分子标志物的新兴作用。
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