检出限
荧光
免疫分析
原位
条形码
化学
材料科学
临床诊断
共价键
纳米技术
色谱法
实验室晶片
信号(编程语言)
多路复用
微流控
组合化学
生物物理学
寡核苷酸
生物传感器
微流控芯片
适体
作者
Jiayu Zhang,Yao Wang,XJ Huang,Haiyu Wu,Q N Lin,Hongchen Gu,Lu Jiang,Linyong Zhu,Hong Yan Xu
摘要
Ultrasensitive detection of low-abundance protein biomarkers is crucial for early disease diagnosis but remains challenging for the conventional barcode beads-based suspension chip platform due to the limited detection sensitivity. Here, we report a conceptually novel reaction termed "radical-mediated in situ fluorescence dye deposition" (RIFD) as a simple interfacial signal amplification strategy to overcome the limitation. This first discovered RIFD follows a universal "three-element principle", where the coexistence of beads, free radicals, and dyes suffices for fluorescence labeling, eliminating the pre-conjugation of dyes to detection probes required in traditional methods. Mechanistic studies reveal that this radical-triggered RIFD possibly follows three distinct pathways, including amide condensation on lysine residues, covalent biphenyl formation on tyrosine residues, or radical-dye co-deposition. It facilitates local and ultrafast (within 5 min) dye-trapping specifically on target-positive barcode beads. Consequently, the established RIFD-based immunoassay achieves a limit of detection of 12 fg/mL for IL-10, a 100-fold improvement over the conventional suspension chip method, and also successfully differentiates Alzheimer's disease patients from healthy controls by quantifying low-abundance plasma p-Tau217. Multiplexed detection is further validated with a three-plex cytokines panel. Our reported RIFD represents a powerful in situ fluorescence labeling tool, advancing protein biomarker detection toward the sub-pg/mL level with broad implications for clinical diagnostics.
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