Ultrasensitive self-powered biosensor with facile chemical signal amplification strategy using hydrogen peroxide-triggered silver oxidation reaction

IF 5.6 1区 化学 Q1 CHEMISTRY, ANALYTICAL Talanta Pub Date : 2024-07-14 DOI:10.1016/j.talanta.2024.126570
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Abstract

The amplification strategies used for self-powered biosensor based on biofuel cell (BFC-SPB) need to be further developed. Because the currently developed strategies utilized the complicated hybridization of DNA or poorly readable current signal of capacitors for amplification, which limits the practical application in public health emergencies. Here, we present a facile chemical amplification strategy for BFC-SPB. The 5-min amplification was triggered by simply adding H2O2 solution dropwise to the sensing cathode after the formation of the immune sandwich. The Ag NP of immunoprobe were oxidized to Ag(I), which can be served as the electron acceptor of the cathode. The amount of immunoprobe was positively correlated with that of the antigen, resulting in corresponding and high concentration of Ag(I) after the amplification, which enhanced the ability of the cathode as the electron acceptor. Meanwhile the glucose oxidation reaction (GOR) was performed on the bioanode modified with glucose oxidase (GOx). After assembling the bioanode and sensing cathode, the open circuit voltage of the BFC-SPB, measured by digital multimeter, distinctly rised with the elevated concentration of the antigen. To demonstrate the proof of concept, immunoglobulin G (IgG), selecting as a model analyte, was sensitively detected using this method. Result indicated that the limit of detection was 4.4 fg mL−1 (0.03 amol mL−1) in the linear range of 1 pg mL−1-10 μg mL−1. This work initiates a brand-new way of chemical amplification strategy for BFC-SPB, and offers a promising platform for practical applications.

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超灵敏自供电生物传感器,采用过氧化氢触发银氧化反应的简便化学信号放大策略。
基于生物燃料电池的自供电生物传感器(BFC-SPB)所使用的放大策略有待进一步开发。因为目前开发的策略都是利用复杂的 DNA 杂交或可读性较差的电容器电流信号进行放大,这限制了其在公共卫生突发事件中的实际应用。在此,我们提出了一种简便的 BFC-SPB 化学扩增策略。在免疫夹层形成后,只需向传感阴极滴加 H2O2 溶液,即可触发 5 分钟的放大。免疫探针的 Ag NP 被氧化成 Ag(I),可作为阴极的电子受体。免疫探针的量与抗原的量呈正相关,放大后形成相应的高浓度 Ag(I),增强了阴极作为电子受体的能力。同时,葡萄糖氧化酶(GOx)修饰的生物阳极上进行了葡萄糖氧化反应(GOR)。将生物阳极和传感阴极组装在一起后,用数字万用表测量,BFC-SPB 的开路电压随着抗原浓度的升高而明显升高。为了证明这一概念,我们选择了免疫球蛋白 G(IgG)作为模型分析物,并用这种方法进行了灵敏检测。结果表明,在 1 pg mL-1-10 μg mL-1 的线性范围内,检测限为 4.4 fg mL-1 (0.03 amol mL-1)。这项工作开创了一种全新的 BFC-SPB 化学放大策略,为实际应用提供了一个前景广阔的平台。
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来源期刊
Talanta
Talanta 化学-分析化学
CiteScore
12.30
自引率
4.90%
发文量
861
审稿时长
29 days
期刊介绍: Talanta provides a forum for the publication of original research papers, short communications, and critical reviews in all branches of pure and applied analytical chemistry. Papers are evaluated based on established guidelines, including the fundamental nature of the study, scientific novelty, substantial improvement or advantage over existing technology or methods, and demonstrated analytical applicability. Original research papers on fundamental studies, and on novel sensor and instrumentation developments, are encouraged. Novel or improved applications in areas such as clinical and biological chemistry, environmental analysis, geochemistry, materials science and engineering, and analytical platforms for omics development are welcome. Analytical performance of methods should be determined, including interference and matrix effects, and methods should be validated by comparison with a standard method, or analysis of a certified reference material. Simple spiking recoveries may not be sufficient. The developed method should especially comprise information on selectivity, sensitivity, detection limits, accuracy, and reliability. However, applying official validation or robustness studies to a routine method or technique does not necessarily constitute novelty. Proper statistical treatment of the data should be provided. Relevant literature should be cited, including related publications by the authors, and authors should discuss how their proposed methodology compares with previously reported methods.
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