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基于激光刻蚀石墨碳修饰铂、壳聚糖和乳酸氧化酶的酶法乳酸电化学传感器。

Electrochemical sensor for enzymatic lactate detection based on laser-scribed graphitic carbon modified with platinum, chitosan and lactate oxidase.

机构信息

Tyndall National Institute, University College Cork, Lee Maltings, Cork, Ireland.

Department of Chemistry, University of Toronto, Canada.

出版信息

Talanta. 2022 Aug 15;246:123492. doi: 10.1016/j.talanta.2022.123492. Epub 2022 Apr 18.

DOI:10.1016/j.talanta.2022.123492
PMID:35487014
Abstract

We developed a flexible laser scribed graphitic carbon based lactate biosensor fabricated using a low cost 450 nm laser. We demonstrated a facile fabrication method involving electrodeposition of platinum followed by two casting steps for modification with chitosan and lactate oxidase. The biosensor demonstrated chronoamperometric lactate detection within a linear range from 0.2 mM to 3 mM, (R > 0.99), with a limit of detection of 0.11 mM and a sensitivity of 35.8 μA/mM/cm. The biosensor was successful in performing up to 10 consecutive measurements (one after the other) indicating good working stability (RSD <5%). Concerning storage stability, there was no decrease in signal response after 30 days of storage at 4 °C. Additionally, we demonstrate enzymatic lactate detection whilst the flexible polyimide substrates were fixed at a curvature (K) of 0.14 mm. No noticeable change in signal response was observed in comparison to calibrations obtained at a curvature of 0 mm, signifying potential opportunities for sensor attachment or integration with oral-care products such as mouth swabs. Both laser scribed graphitic carbon and Ag/AgCl modified-laser scribed graphitic carbon were successful as reference electrodes for chronoamperometric lactate measurements. Furthermore, using a three-electrode configuration on polyimide, lactate detection in both artificial saliva and sterile human serum samples was achieved for two spiked concentrations (0.5 mM and 1 mM).

摘要

我们开发了一种灵活的激光刻蚀石墨碳基乳酸生物传感器,使用低成本的 450nm 激光制造。我们展示了一种简便的制造方法,涉及铂的电沉积,然后进行两步浇铸,以壳聚糖和乳酸氧化酶进行修饰。该生物传感器在 0.2mM 至 3mM 的线性范围内表现出计时安培法乳酸检测,(R>0.99),检测限为 0.11mM,灵敏度为 35.8μA/mM/cm。该生物传感器成功地进行了多达 10 次连续测量(一次接一次),表明工作稳定性良好(RSD<5%)。关于储存稳定性,在 4°C 下储存 30 天后,信号响应没有下降。此外,我们在柔性聚酰亚胺基板固定曲率(K)为 0.14mm 的情况下,演示了酶促乳酸检测。与在曲率为 0mm 时获得的校准相比,信号响应没有明显变化,这表明传感器附接或与口腔护理产品(如口腔拭子)集成的潜在机会。激光刻蚀石墨碳和 Ag/AgCl 修饰的激光刻蚀石墨碳都成功地用作计时安培法乳酸测量的参比电极。此外,在聚酰亚胺上使用三电极配置,在两种人工唾液和无菌人血清样本中均实现了两种加标浓度(0.5mM 和 1mM)的乳酸检测。

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