School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang, 212013, PR China.
School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang, 212013, PR China; Key Laboratory of Modern Agriculture Equipment and Technology, Ministry of Education, School of Agricultural Engineering, Jiangsu University, Zhenjiang, 212013, PR China; Key Laboratory of Optic-electric Sensing and Analytical Chemistry for Life Science, OE, School of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, PR China.
Anal Chim Acta. 2024 Nov 22;1330:343282. doi: 10.1016/j.aca.2024.343282. Epub 2024 Sep 26.
In the process of food production, ciprofloxacin (CIP), a highly prescribed fluoroquinolone antibiotic, is often excessively used to reduce the risk of bacterial infection. However, this overuse can cause severe harm to human health, including allergic responses, gastrointestinal complications, and potential renal dysfunction. The development of a robust and precise detection method for CIP is crucial, given the interconnection between food security and human health. Compared to the single-mode detection methods currently in use, dual-mode detection provides enhanced accuracy in detecting results due to its inherent self-validation and self-correction capabilities.
Herein, a photoelectrochemical and photoelectrochromic self-validated dual-mode sensing platform was developed to detect CIP in milk by laser etching method, signal generation (SG) region, signal output (SO) region and conductive channel was integrated on the same fluoide-doped tin oxide electrode and TiC/ZnO composite was modified in the electron SG region, and Prussian blue (PB) was electrodeposited in the SO region. By irradiating the SG region, photogenerated electrons are generated and injected into the SO region through the conductive pathway, resulting in the reduction of the PB to Prussian white (PW). Because the binding of CIP to its specifically recognized aptamers hinders electron transfer, a "Signal-Off" response mechanism can be used for simultaneous quantitative detection of CIP using photocurrent or color changes, which presents a great advantage in the detection process.
By integrating different detection mechanisms within a single linear range, the constructed dual-mode sensor has a wide detection range and low detection limit in milk samples. Additionally, it shows good selectivity in anti-interference experiments, providing a new idea for the development of visual analysis and detection platforms for food safety.
在食品生产过程中,环丙沙星(CIP)作为一种被广泛使用的氟喹诺酮类抗生素,经常被过度使用以降低细菌感染的风险。然而,这种过度使用会对人类健康造成严重危害,包括过敏反应、胃肠道并发症和潜在的肾功能障碍。鉴于食品安全和人类健康之间的紧密联系,开发一种强大而精确的 CIP 检测方法至关重要。与目前使用的单模式检测方法相比,双模式检测由于其固有的自我验证和自我校正能力,提供了更准确的检测结果。
本研究通过激光刻蚀法,在同一氟掺杂氧化锡电极上集成光电化学和光电致变色自验证双模式传感平台,用于检测牛奶中的 CIP,信号产生(SG)区域、信号输出(SO)区域和导电通道,并在电子 SG 区域修饰 TiC/ZnO 复合材料,在 SO 区域电沉积普鲁士蓝(PB)。通过对 SG 区域进行照射,产生光生电子,并通过导电途径注入 SO 区域,导致 PB 被还原为普鲁士白(PW)。由于 CIP 与其特异性识别的适体结合会阻碍电子转移,因此可以使用光电流或颜色变化来进行同时定量检测 CIP 的“信号关闭”响应机制,这在检测过程中具有很大的优势。
通过在单个线性范围内集成不同的检测机制,构建的双模式传感器在牛奶样品中具有较宽的检测范围和较低的检测限。此外,它在抗干扰实验中表现出良好的选择性,为食品安全的可视化分析和检测平台的发展提供了新的思路。