School of Precision Instrument and Opto-Electronics Engineering, Tianjin University, Tianjin 300072, China.
Key Laboratory of Opto-Electronics Information Technology, Ministry of Education, Tianjin University, Tianjin 300072, China.
Biosensors (Basel). 2022 Jun 22;12(7):439. doi: 10.3390/bios12070439.
Quantitative detection of cardiac troponin biomarkers in blood is an important method for clinical diagnosis of acute myocardial infarction (AMI). In this work, a whispering gallery mode (WGM) microcavity immunosensor based on a prefab hollow glass microsphere (HGMS) with liquid crystal (LC) sensitization was proposed and experimentally demonstrated for label-free cardiac troponin I-C (cTnI-C) complex detection. The proposed fiber-optic immunosensor has a simple structure; the tiny modified HGMS serves as the key sensing element and the microsample reservoir simultaneously. A sensitive LC layer with cTnI-C recognition ability was deposited on the inner wall of the HGMS microcavity. The arrangement of LC molecules is affected by the cTnI-C antigen-antibody binding in the HGMS, and the small change of the surface refractive index caused by the binding can be amplified owing to the birefringence property of LC. Using the annular waveguide of the HGMS, the WGMs were easily excited by the coupling scanning laser with a microfiber, and an all-fiber cTnI-C immunosensor can be achieved by measuring the resonant wavelength shift of the WGM spectrum. Moreover, the dynamic processes of the cTnI-C antigen-antibody binding and unbinding was revealed by monitoring the wavelength shift continuously. The proposed immunosensor with a spherical microcavity can be a cost-effective tool for AMI diagnosis.
血液中心肌钙蛋白生物标志物的定量检测是临床诊断急性心肌梗死(AMI)的重要方法。在这项工作中,提出并实验验证了一种基于具有液晶(LC)敏化的预制空心玻璃微球(HGMS)的 whispering gallery mode(WGM)微腔免疫传感器,用于无标记心肌钙蛋白 I-C(cTnI-C)复合物检测。所提出的光纤免疫传感器结构简单;微小的改性 HGMS 同时用作关键传感元件和微样本储液器。在 HGMS 微腔的内壁上沉积了具有 cTnI-C 识别能力的灵敏 LC 层。LC 分子的排列受到 HGMS 中 cTnI-C 抗原-抗体结合的影响,并且由于 LC 的双折射特性,结合引起的表面折射率的微小变化可以被放大。利用 HGMS 的环形波导,通过微光纤的耦合扫描激光很容易激发出 WGM,通过测量 WGM 光谱的共振波长移动,可以实现全光纤 cTnI-C 免疫传感器。此外,通过连续监测波长移动,可以揭示 cTnI-C 抗原-抗体结合和解离的动态过程。具有球形微腔的提出的免疫传感器可以成为 AMI 诊断的一种具有成本效益的工具。