Department of Mechanical Engineering, National Chung Cheng University, Chiayi 62102, Taiwan.
Department of Chemistry and Biochemistry, National Chung Cheng University, Chia-Yi County 62102, Taiwan.
Analyst. 2022 Oct 10;147(20):4417-4425. doi: 10.1039/d2an01092e.
An effective bio-sensing platform that would meet the criteria of rapid, simple, and sensitive detection is crucial to translate bench research to clinical applications. However, simultaneously rapid and sensitive biosensing remains challenging for practical biomedical applications. In this study, for the first time, we demonstrate a cost-effective, label-free, real-time, and sensitive slab waveguide-based particle plasmon resonance (WGPPR) biosensor for practical clinical applications. A suspended glass slab waveguide structure with excellent optical confinement properties was designed and fabricated as the biosensor. Gold nanoparticles (AuNPs) were deposited on the top surface of the waveguide layer to significantly enhance the optical near field through the localized surface plasmon resonance (LSPR) effect. When light travels through the waveguide, the change in the local refractive index (RI) near the surface of the AuNPs can be transformed into changes in the intensity of transmitted light, thereby enabling sensitive and real-time detection. The RI sensing experiment shows a good sensor resolution of 1.43 × 10 RIU, which represents a 395% enhancement compared to that of the sensor without AuNPs. Through biochemical detection experiments, we measured IgG and determined the detection limit (LOD) at 614 ng mL in ∼4 min, thereby proving the feasibility of the bio-detection sensing functionality. This study demonstrates a new type of WGPPR biosensor, which offers several unique advantages such as simple structure, high sensitivity, and rapid bio-sensing for practical bio-medical sensing applications. The new biosensor also fulfils point-of-care (POC) requirements.
一个满足快速、简单和灵敏检测标准的有效生物传感平台对于将基础研究转化为临床应用至关重要。然而,同时实现快速和灵敏的生物传感对于实际的生物医学应用仍然具有挑战性。在本研究中,我们首次展示了一种具有成本效益、无标记、实时和灵敏的基于平板波导的粒子等离子体共振(WGPPR)生物传感器,可用于实际的临床应用。我们设计并制造了具有优异光学限制性能的悬浮玻璃平板波导结构作为生物传感器。金纳米粒子(AuNPs)沉积在波导层的上表面,通过局域表面等离子体共振(LSPR)效应显著增强了光学近场。当光在波导中传播时,AuNPs 表面附近局部折射率(RI)的变化可以转化为透射光强度的变化,从而实现灵敏和实时检测。RI 传感实验显示出良好的传感器分辨率为 1.43×10 RIU,与没有 AuNPs 的传感器相比提高了 395%。通过生化检测实验,我们测量了 IgG,并在大约 4 分钟内确定了检测限(LOD)为 614ng/mL,从而证明了生物检测传感功能的可行性。本研究展示了一种新型的 WGPPR 生物传感器,它具有结构简单、灵敏度高、快速生物传感等独特优势,适用于实际的生物医学传感应用。新型生物传感器还满足即时检测(POC)的要求。