Ω-Shaped Fiber-Optic Probe-Based Localized Surface Plasmon Resonance Biosensor for Real-Time Detection of Salmonella Typhimurium

生物传感器 表面等离子共振 化学 沙门氏菌 光纤 适体 灵敏度(控制系统) 弯曲半径 弯曲 折射率 分析化学(期刊) 纤维 光纤传感器 纳米颗粒 光学 色谱法 光电子学 纳米技术 材料科学 细菌 生物化学 分子生物学 物理 工程类 复合材料 生物 有机化学 遗传学 电子工程
作者
Ya Xu,Zewei Luo,Junman Chen,Zhijun Huang,Xu Wang,Huifang An,Zhongjun Zhao
出处
期刊:Analytical Chemistry [American Chemical Society]
卷期号:90 (22): 13640-13646 被引量:56
标识
DOI:10.1021/acs.analchem.8b03905
摘要

A novel, Ω-shaped fiber-optic localized surface plasmon resonance (FOLSPR) biosensor was designed for sensitive real-time and label-free bacterial detection. The designed Ω-shaped fiber-optic probe exhibits an outstanding sensitivity, due to the effect of unique geometry on performance. The results show that refractive index (RI) sensitivity of the Ω-shaped fiber-optic probe is 14 times and 2.5 times higher than those of the straight-shaped and the U-shaped FOLSPR, respectively. In addition, the reason for the geometry and the bending radius effects on RI sensitivity was discussed by investigating the relationship between RI sensitivity and the bending area. The results show that RI sensitivity was enhanced with the increase of bending area, and the best RI sensitivity obtained by Ω-shaped FOLSPR was 64.582 (a.u.)/RIU. Combined with this newly designed Ω-shaped FOLSPR biosensor, a real-time, label-free, sensitive, and highly selective bacterial detection method was established. In this work, the aptamers immobilized on the surface of FOLSPR could specifically capture Salmonella Typhimurium, resulting in an intense change of the absorption peak. In line with this principle, the FOLSPR biosensor achieved high detection sensitivity for Salmonella Typhimurium down to 128 CFU/mL within a linear range from 5 × 102 to 1 × 108 CFU/mL and showed good selectivity for Salmonella Typhimurium detection compared to other bacteria. Furthermore, the FOLSPR biosensor was successfully applied to the detection of Salmonella Typhimurium in a chicken sample with the recoveries of 85–123%. With these characteristics, the novel biosensor is a potential alternative tool in food analysis and environmental monitoring.
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