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Rapid and label-free single-nucleotide discrimination via an integrative nanoparticle-nanopore approach

机译:通过集成的纳米颗粒-纳米孔方法快速无标签的单核苷酸区分

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摘要

Single-nucleotide polymorphism (SNP) is an important biomarker for disease diagnosis, treatment monitoring, and development of personalized medicine. Recent works focused primarily on ultrasensitive detection, while the need for rapid and label-free single-nucleotide discrimination techniques, which are crucial criteria for translation into clinical applications, remains relatively unexplored. In this work, we developed a novel SNP detection assay that integrates two complementary nanotechnology systems, namely, a highly selective nanoparticle-DNA detection system and a single-particle sensitive nanopore readout platform, for rapid detection of single-site mutations. Discrete nanoparticle-DNA structures formed in the presence of perfectly matched (PM) or single-mismatched (SM) targets exhibited distinct size differences, which were resolved on a size-tunable nanopore platform to generate corresponding "yeso" readout signals. Leveraging the in situ reaction monitoring capability of the nanopore platform, we demonstrated that real-time single-nucleotide discrimination of a model G487A mutation, responsible for glucose-6-phosphate dehydrogenase deficiency, can be achieved within 30 min with no false positives. Semiquantification of DNA samples down to picomolar concentration was carried out using a simple parameter of particle count without the need for sample labeling or signal amplification. The unique combination of nanoparticle-based detection and nanopore readout presented in this work brings forth a rapid, specific, yet simple biosensing strategy that can potentially be developed for point-of-care application.
机译:单核苷酸多态性(SNP)是疾病诊断,治疗监测和个性化医学开发的重要生物标记。最近的工作主要集中在超灵敏检测上,而对快速和无标签的单核苷酸鉴别技术的需求,这些技术是转化为临床应用的关键标准,目前仍未得到开发。在这项工作中,我们开发了一种新颖的SNP检测检测方法,该检测方法整合了两个互补的纳米技术系统,即高选择性纳米颗粒DNA检测系统和单颗粒敏感纳米孔读出平台,可快速检测单点突变。在完全匹配(PM)或单次不匹配(SM)靶标存在下形成的离散纳米颗粒-DNA结构表现出明显的大小差异,这些大小差异可在大小可调的纳米孔平台上解析,以产生相应的“是/否”读出信号。利用纳米孔平台的原位反应监测功能,我们证明了造成葡萄糖-6-磷酸脱氢酶缺陷的模型G487A突变的实时单核苷酸识别可以在30分钟内实现,而没有假阳性。使用简单的颗粒计数参数,可对低至皮摩尔浓度的DNA样品进行半定量分析,而无需样品标记或信号放大。这项工作中提出的基于纳米颗粒的检测和纳米孔读数的独特组合带来了一种快速,特异性,简单的生物传感策略,可以为即时医疗应用开发。

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