Department of Nanoengineering, University of California, San Diego, San Diego, La Jolla, CA, 92093, USA.
Biotechnology Department, Ege University, 35100, Bornova, Izmir, Turkey.
Angew Chem Int Ed Engl. 2019 May 6;58(19):6376-6379. doi: 10.1002/anie.201902664. Epub 2019 Apr 3.
Performing bioassay formats based on enzyme and antibody recognition reactions with a single detection chip remains an unmet challenge owing to the different requirements of such bioassays. Herein, we describe a dual-marker biosensor chip, integrating enzyme and antibody-based assays for simultaneous electrochemical measurements of insulin (I) and glucose (G). Simultaneous G/I sensing has been realized by addressing key fabrication and operational challenges associated with the different assay requirements and surface chemistry. The I immunosensor relies on a peroxidase-labeled sandwich immunoassay, while G is monitored through reaction with glucose oxidase. The dual diabetes biomarker chip offers selective and reproducible detection of picomolar I and millimolar G concentrations in a single microliter sample droplet within less than 30 min, including direct measurements in whole blood and saliva samples. The resulting integrated enzymatic-immunoassay biosensor chip opens a new realm in point-of-care multiplexed biomarker detection.
由于不同生物分析方法的要求不同,基于单一检测芯片的酶和抗体识别反应的生物分析方法仍然是一个未满足的挑战。本文描述了一种双标记生物传感器芯片,将基于酶和抗体的分析方法集成在一起,用于同时进行电化学胰岛素(I)和葡萄糖(G)的测量。通过解决与不同分析要求和表面化学相关的关键制造和操作挑战,实现了同时进行 G/I 传感。I 免疫传感器依赖于过氧化物酶标记的三明治免疫分析,而 G 则通过与葡萄糖氧化酶的反应进行监测。该双糖尿病生物标志物芯片可在不到 30 分钟的时间内,从单个微升样本液滴中选择性且可重复地检测皮摩尔级别的 I 和毫摩尔级别的 G 浓度,包括直接在全血和唾液样本中的测量。这种集成的酶免疫分析生物传感器芯片为即时检测中多重生物标志物检测开辟了新领域。