信号(编程语言)
适体
材料科学
电极
纳米技术
生物系统
计算机科学
生物传感器
微电极
单层
分析物
机制(生物学)
样品(材料)
信号处理
干扰(通信)
人工智能
适应(眼睛)
模式识别(心理学)
电子工程
样品制备
微流控
探测理论
光电子学
作者
Senyao Wang,Ali Elmorsy,Defne Tüzün,Lilly Schmidt,Sebastian Freko,Lukas Hiendlmeier,Chen Wang,Alonso Ingar Romero,George Al Boustani,Hu Peng,Berna Özkale,Nako Nakatsuka,Bernhard Wolfrum
摘要
Timely and decentralized quantification of small-molecule biomarkers is essential for point-of-care (POC) diagnostics, but their reliable detection in biofluids remains challenging. Here, we introduce an engineered electrochemical aptamer sensing platform that employs a dual-channel signal conversion strategy to overcome these limitations. By integrating spatially separated interdigitated working electrodes with selective self-assembled monolayer (SAM) removal, the system enables target-induced release and recapture of methylene blue-labeled complementary DNA (MB-cDNA) probes across two electrodes. This configuration minimizes background interference and enhances mass transport, facilitating robust dual-channel signal transduction. The platform enables rapid (≤ 30 min), low-volume (30 µL) detection of prototypical small molecules, dopamine and cortisol, in diverse biofluids, including artificial cerebrospinal fluid (aCSF), human serum, and saliva. Notably, the signal conversion mechanism remained effective across different targets and sample types, requiring only minimal adaptation of the recognition sequence. Together, these features establish a versatile electrochemical sensing architecture with broad potential for rapid, quantitative small-molecule analysis in complex biological media.
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