Institute of Photonics Technology, Jinan University, Guangzhou, 510632, China.
State Key Laboratory of Bioactive Molecules and Druggability Assessment, JNU-HKUST Joint Laboratory for Neuroscience and Innovative Drug Research, College of Pharmacy, Jinan University, Guangzhou, 510632, China.
Adv Sci (Weinh). 2024 Jun;11(24):e2308783. doi: 10.1002/advs.202308783. Epub 2024 Mar 20.
As the population ages, the worldwide prevalence of Alzheimer's disease (AD) as the most common dementia in the elderly is increasing dramatically. However, a long-term challenge is to achieve rapid and accurate early diagnosis of AD by detecting hallmarks such as amyloid beta (Aβ). Here, a multi-channel microfluidic-based plasmonic fiber-optic biosensing platform is established for simultaneous detection and differentiation of multiple AD biomarkers. The platform is based on a gold-coated, highly-tilted fiber Bragg grating (TFBG) and a custom-developed microfluidics. TFBG excites a high-density, narrow-cladding-mode spectral comb that overlaps with the broad absorption of surface plasmons for high-precision interrogation, enabling ultrasensitive monitoring of analytes. In situ detection and in-parallel discrimination of different forms of Aβ in cerebrospinal fluid (CSF) are successfully demonstrated with a detection of limit in the range of ≈30-170 pg mL, which is one order of magnitude below the clinical cut-off level in AD onset, providing high detection sensitivity for early diagnosis of AD. The integration of the TFBG sensor with multi-channel microfluidics enables simultaneous detection of multiple biomarkers using sub-µL sample volumes, as well as combining initial binding rate and real-time response time to differentiate between multiple biomarkers in terms of binding kinetics. With the advantages of multi-parameter, low consumption, and highly sensitive detection, the sensor represents an urgently needed potentials for large-scale diagnosis of diseases at early stage.
随着人口老龄化,全世界阿尔茨海默病(AD)作为老年人最常见的痴呆症的患病率正在急剧上升。然而,一个长期的挑战是通过检测淀粉样蛋白β(Aβ)等标志物来实现 AD 的快速和准确的早期诊断。在这里,建立了一个基于多通道微流控的等离子体光纤生物传感平台,用于同时检测和区分多种 AD 生物标志物。该平台基于镀金的高倾斜光纤布拉格光栅(TFBG)和定制的微流控器件。TFBG 激发高密度、窄包层模式的光谱梳,与表面等离子体的宽带吸收重叠,实现高精度的询问,能够对分析物进行超灵敏监测。在原位检测和在平行区分不同形式的脑脊液(CSF)中的 Aβ 成功地证明了,检测限在 ≈30-170pg/mL 的范围内,这是 AD 发病的临床截止值的一个数量级以下,为 AD 的早期诊断提供了高检测灵敏度。TFBG 传感器与多通道微流控的集成,能够使用亚微升的样品体积同时检测多种生物标志物,并结合初始结合速率和实时响应时间,根据结合动力学来区分多种生物标志物。该传感器具有多参数、低消耗和高灵敏度检测的优点,代表了对疾病进行早期大规模诊断的迫切需求。