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用于癌症生物标志物检测与成像的模拟辅助局部DNA逻辑电路

Simulation-Assisted Localized DNA Logical Circuits for Cancer Biomarkers Detection and Imaging.

作者信息

Kou Qiaoni, Wang Lei, Zhang Linghao, Ma Liang, Fu Shengnan, Su Xin

机构信息

College of Life Science and Technology, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.

Clinical Laboratory, China-Japan Friendship Hospital, Beijing, 100029, P. R. China.

出版信息

Small. 2022 Dec;18(49):e2205191. doi: 10.1002/smll.202205191. Epub 2022 Oct 26.

Abstract

DNA-based nanodevices equipped with localized modules have been promising probes for biomarker detection. Such devices heavily rely on the intramolecular hybridization reaction. However, there is a lack of mechanistic insights into this reaction that limits the sensing speed and sensitivity. A coarse-grained model is utilized to simulate the intramolecular hybridization of localized DNA circuits (LDCs) not only optimizing the performance, but also providing mechanistic insights into the hybridization reaction. The simulation guided-LDCs enable the detection of multiple biomarkers with high sensitivity and rapid speed showing good consistency with the simulation. Fluorescence assays demonstrate that the simulation-guided LDC shows an enhanced sensitivity up to 9.3 times higher than that of the same probes without localization. The detection limits of ATP, miRNA, and APE1 reach 0.14 mM, 0.68 pM, and 0.0074 U mL , respectively. The selected LDC is operated in live cells with good success in simultaneously detecting the biomarkers and discriminating between cancer cells and normal cells. LDC is successfully applied to detect the biomarkers in cancer tissues from patients, allowing the discrimination of cancer/adjacent/normal tissues. This work herein presents a design workflow for DNA nanodevices holding great potential for expanding the applications of DNA nanotechnology in diagnostics and therapeutics.

摘要

配备局部模块的基于DNA的纳米器件一直是用于生物标志物检测的有前景的探针。这类器件严重依赖分子内杂交反应。然而,目前缺乏对该反应的机制性理解,这限制了传感速度和灵敏度。利用粗粒度模型模拟局部DNA电路(LDC)的分子内杂交,不仅优化了性能,还提供了对杂交反应的机制性理解。模拟指导的LDC能够高灵敏度、快速地检测多种生物标志物,与模拟结果显示出良好的一致性。荧光分析表明,模拟指导的LDC的灵敏度比未进行局部化的相同探针提高了9.3倍。ATP、miRNA和APE1的检测限分别达到0.14 mM、0.68 pM和0.0074 U mL。所选的LDC在活细胞中运行成功,能够同时检测生物标志物并区分癌细胞和正常细胞。LDC成功应用于检测患者癌组织中的生物标志物,从而能够区分癌组织/癌旁组织/正常组织。本文的工作提出了一种DNA纳米器件的设计工作流程,在扩展DNA纳米技术在诊断和治疗中的应用方面具有巨大潜力。

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