Henan Province Key Laboratory of New Opto-electronic Functional Materials, College of Chemistry and Chemical Engineering, Anyang Normal University, Anyang, Henan 455000, China.
Shiyan Key Laboratory of Biological Resources and Eco-environmental Protection, Department of Chemistry and Environmental Engineering, Hanjiang Normal University, Shiyan 442000 China.
Spectrochim Acta A Mol Biomol Spectrosc. 2025 Jan 15;325:125088. doi: 10.1016/j.saa.2024.125088. Epub 2024 Sep 2.
An aggregation-induced emission (AIE)-based strategy was proposed for fluorescence immunoassays of protein biomarkers using Cu-based metal-organic frameworks (Cu-MOFs) to load recombinant targets and enzymes for dual signal amplification. The immunosensing platform was built based on the sequestration and consumption of the substrates of pyrophosphate (PPi) ions by Cu-MOFs and enzymatic catalysis. The negatively charged PPi could trigger the aggregation of positively charged tetraphenylethene (TPE)-substituted pyridinium salt nanoparticles (TPE-Py NPs) by electrostatic interactions, lighting up the fluorescence due to the AIE phenomenon. The consumption of PPi by the captured Cu-MOFs through the Cu-PPi chelation interaction and ALP-enzymatic hydrolysis depressed the aggregation of TPE-Py NPs. Capture of the tested targets in samples by the antibodies on the plate surface could prevent the attachment of target/ALP-loaded Cu-MOFs due to the competitive immunoreactions. The "signal-on" competitive immunoassay was applied for the detection of procalcitonin (PCT) as the model analyte with a linear range of 0.01-10 pg/mL and a detection limit down to 8 pg/mL. The conceptual integration of AIE with enzymatic and MOFs-based dual signal amplification endowed fluorescence immunoassays with high sensitivity and selectivity. The surface modification of Cu-MOFs with hexahistine (His)-tagged recombinant proteins through metal coordination interactions should be evaluable for the design of novel biosensors.
基于聚集诱导发光(AIE)的策略被提出,用于使用基于铜的金属有机框架(Cu-MOF)负载重组靶标和酶进行双重信号放大的蛋白质生物标志物的荧光免疫分析。免疫传感平台基于 MOFs 对焦磷酸根(PPi)离子的猝灭和消耗以及酶催化构建。带负电荷的 PPi 可以通过静电相互作用触发带正电荷的四苯乙烯(TPE)取代的吡啶盐纳米粒子(TPE-Py NPs)的聚集,由于聚集诱导发光(AIE)现象而使荧光点亮。通过 Cu-PPi 螯合相互作用和碱性磷酸酶(ALP)酶解消耗 Cu-MOFs 中的 PPi 会抑制 TPE-Py NPs 的聚集。通过板表面上的抗体在样品中捕获测试靶标,可以防止由于竞争性免疫反应而使载有靶标/ALP 的 Cu-MOF 附着。“信号开启”竞争免疫分析应用于降钙素原(PCT)作为模型分析物的检测,线性范围为 0.01-10 pg/mL,检测限低至 8 pg/mL。AIE 与酶和 MOFs 双重信号放大的概念整合赋予了荧光免疫分析高灵敏度和选择性。通过金属配位相互作用将六组氨酸(His)标记的重组蛋白表面修饰到 Cu-MOFs 上,应该可以评估用于设计新型生物传感器的方案。