酶沉淀法表面等离子体共振免疫分析信号放大传感器结构的比较

Chih‐Tsung Yang, B. Thierry
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引用次数: 2

摘要

表面等离子体共振(SPR)生物传感已经成功地应用于广泛的生物分析物的无标记检测,包括细菌、细胞、外泌体、蛋白质和核酸。当涉及到小分子或低浓度分析物的检测时,放大方案是可取的,以增强结合信号,从而提高灵敏度。一些SPR信号放大方案已经被开发和验证;然而,很少有人致力于了解SPR传感器结构对结合信号放大的影响,从而影响整体传感性能。远距离SPR (LRSPR)的物理现象依赖于悬浮在具有相似折射率的介质之间的纳米级厚贵金属薄膜的相对两侧的耦合表面等离子体波的传播。重要的是,与常用的传统SPR (cSPR)相比,LRSPR不仅具有更长的等离子体波在被分析介质中的穿透深度,而且对体折射率变化的灵敏度更高。本研究利用辣根过氧化物酶(HRP)催化沉淀的免疫分析信号扩增平台,研究了其对cSPR和LRSPR的检测性能。采用3,3′-二氨基联苯胺四盐酸盐(DAB)/H2O2酶沉法扩增SPR信号。介绍了cSPR和LRSPR传感器在标准折射测量和酶促沉淀方案中的结构-功能关系。实验数据表明,尽管LRSPR对体折射率变化具有较高的灵敏度和较高的优值,但在模型酶扩增方案中,LRSPR具有较低的角灵敏度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison of sensor structures for the signal amplification of surface plasmon resonance immunoassay using enzyme precipitation
Surface plasmon resonance (SPR) biosensing has been successfully applied for the label-free detection of a broad range of bioanalytes ranging from bacteria, cell, exosome, protein and nucleic acids. When it comes to the detection of small molecules or analytes found at low concentration, amplification schemes are desirable to enhance binding signals and in turn increase sensitivity. A number of SPR signal amplification schemes have been developed and validated; however, little effort has been devoted to understanding the effect of the SPR sensor structures on the amplification of binding signals and therefore on the overall sensing performance. The physical phenomenon of long-range SPR (LRSPR) relies on the propagation of coupled surface plasmonic waves on the opposite sides of a nanoscale-thick noble metal film suspended between two dielectrics with similar refractive indices. Importantly, as compared with commonly used conventional SPR (cSPR), LRSPR is not only characterized by a longer penetration depth of the plasmonic waves in the analyzed medium but also by a greater sensitivity to bulk refractive index changes. In this work, an immunoassay signal amplification platform based on horseradish peroxidase (HRP) catalyzed precipitation was utilized to investigate the sensing performance with regards to cSPR and LRSPR. The enzymatic precipitation of 3, 3’-diaminobenzidine tetrahydrochloride (DAB)/H2O2 was used to amplify SPR signals. The structure-function relationship of cSPR and LRSPR sensors is presented for both standard refractometric measurements and the enzymatic precipitation scheme. Experimental data shows that despite its inherent higher sensitivity to bulk refractive index changes and higher figure of merit, LRSPR was characterized by a lower angular sensitivity in the model enzymatic amplification scheme used here.
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