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Fiber-optic surface plasmon resonance glucose sensor enhanced with phenylboronic acid modified Au nanoparticles

机译:光纤表面等离子体共振葡萄糖传感器与苯硼酸改性Au纳米颗粒增强

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摘要

A highly sensitive surface plasmon resonance (SPR) sensor is reported for glucose detection using self-assembled p-mercaptophenylboronic acid (PMBA) monolayer on Au coated optical fibers. The cis-diol group of saccharides, such as for glucose, interacted with the self-assembled PMBA monolayers on the optical fibers, but the low molecular mass of glucose is insufficient for measuring a significant shift in SPR wavelength. The response for glucose was thus enhanced with Au nanoparticles (Au NPs) modified with 2-aminoethanethiol (AET) and PMBA. Selectivity was assured since glucose has the ability to capture the signal amplification tags (Au NPs/AETPMBA) through secondary binding with another set of syn-periplanar diol groups and the PMBA on the gold surface. Accordingly, a glucose concentration-dependent sandwich structure was formed and the coupling between Au NPs and Au film results in the red shift of SPR resonance wavelength. The experimental results demonstrated that this SPR sensor responded to glucose within a range of 0.01-30 mM better than to fructose and galactose. The minimum concentration for quantify glucose is as low as 80 nM, which is lower than the physiological blood glucose level. Glucose was then accurately detected in urine sample, which indicated the potential application of the sensor for the analysis of glucose in urine. We believe that our proposed PMBA-modified single amplification tag and sensing principle can also be used for biomolecules consisting of carbohydrate structures, particularly for DNA-associated bioanalysis.
机译:报告了一种高敏感的表面等离子体共振(SPR)传感器用于在Au涂覆的光纤上使用自组装的p-巯基苯氨基苯甲酸(PMBA)单层进行葡萄糖检测。糖类的顺式二醇基团,例如葡萄糖,用在光纤上与自组装的PMBa单层相互作用,但低分子量的葡萄糖是不足以测量SPR波长的显着变化。因此,用2-氨基乙醇(AET)和PMBA改性的Au纳米颗粒(Au NPS)增强了葡萄糖的响应。确保了选择性,因为葡萄糖能够通过与另一组同步结合的二次同步吡喃二醇基团和金表面上的PMBA捕获信号放大标签(Au NPS / AETPMBA)。因此,形成葡萄糖浓度依赖性夹心结构,并且Au nps和Au膜之间的偶联导致SPR共振波长的红色偏移。实验结果表明,该SPR传感器在0.01-30mm的范围内比果糖和半乳糖更好地响应于葡萄糖。量化葡萄糖的最小浓度低至80nm,低于生理血糖水平。然后在尿液样品中精确地检测到葡萄糖,这表明传感器潜在应用用于分析尿液中的葡萄糖。我们认为,我们所提出的PMBA改性的单一扩增标签和感测原理也可用于由碳水化合物结构组成的生物分子,特别是对于DNA相关的生物分析。

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