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构建了基于氮掺杂中空碳纳米球的自供电传感平台,用于超灵敏检测和实时跟踪双标记物。

Constructed a self-powered sensing platform based on nitrogen-doped hollow carbon nanospheres for ultra-sensitive detection and real-time tracking of double markers.

机构信息

International Joint Research Laboratory of New Energy Materials and Devices of Henan Province, School of Physics and Electronics, Henan University, Kaifeng, 475004, PR China; School of Science and Engineering, Xinyang College, Xinyang, 464000, PR China.

Key Laboratory of Chemistry and Engineering of Forest Products, State Ethnic Affairs Commission, Guangxi Key Laboratory of Chemistry and Engineering of Forest Products, Guangxi Collaborative Innovation Center for Chemistry and Engineering of Forest Products, Key Laboratory of Applied Analytical Chemistry (Guangxi Minzu University), School of Chemistry and Chemical Engineering, Guangxi Minzu University, Nanning, 530008, PR China.

出版信息

Anal Chim Acta. 2023 Aug 1;1267:341333. doi: 10.1016/j.aca.2023.341333. Epub 2023 May 18.

Abstract

Acute myocardial infarction (AMI) is acute necrosis of a portion of the myocardium caused by myocardial ischemia, which seriously threatens people's health and life safety. Its early diagnosis is a difficult problem in clinical medicine. Research has found that the abnormal expression of microRNA-199a (miR-199a) and microRNA-499 (miR-499) was closely related to AMI disease. In this work, we took advantage of the structural advantages of nitrogen-doped hollow carbon nanospheres (N-HCNSs) to design an ultra-sensitive, portable real-time monitoring visual self-powered biosensor system, which based on dual-target miRNAs triggered catalytic hairpin assembly (CHA) for sensitive detection of miR-199a and miR-499. In addition, the capacitor and the smartphone are introduced into the system to realize the secondary improvement of system sensitivity and portable real-time visual monitoring. Under optimized conditions, in the linear range of 0.1-100000 aM, the detection limits of miR-199a and miR-499 are 0.031 and 0.027 aM, respectively. At the same time, the ultra-sensitive detection of miRNAs is realized in the serum sample, and the recovery rate of miR-199a and miR-499 are 98.0-106.0% (RSD: 0.6-8.1%) and 94.0-109.7% (RSD: 1.8-7.7%), respectively. The method is simple, sensitive and can be used for real-time tracking and portable monitoring of related diseases.

摘要

急性心肌梗死(AMI)是由于心肌缺血导致的一部分心肌的急性坏死,严重威胁着人们的健康和生命安全。其早期诊断是临床医学上的一个难题。研究发现,微小 RNA-199a(miR-199a)和微小 RNA-499(miR-499)的异常表达与 AMI 疾病密切相关。在这项工作中,我们利用氮掺杂空心碳纳米球(N-HCNSs)的结构优势,设计了一种超灵敏、便携式实时监测可视化自供电生物传感器系统,该系统基于双靶标 miRNA 触发的催化发夹组装(CHA),用于敏感检测 miR-199a 和 miR-499。此外,该系统还引入了电容器和智能手机,实现了系统灵敏度和便携式实时可视化监测的二次改进。在优化条件下,在 0.1-100000 aM 的线性范围内,miR-199a 和 miR-499 的检测限分别为 0.031 和 0.027 aM。同时,在血清样本中实现了对 miRNAs 的超灵敏检测,miR-199a 和 miR-499 的回收率分别为 98.0-106.0%(RSD:0.6-8.1%)和 94.0-109.7%(RSD:1.8-7.7%)。该方法简单、灵敏,可用于相关疾病的实时跟踪和便携式监测。

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