脱氧核酶
化学
生物传感器
纳米技术
检出限
拉曼散射
等离子体子
蚀刻(微加工)
核酸
拉曼光谱
多路复用
光电子学
分析物
信号(编程语言)
模块化设计
临床诊断
原位
动态范围
分子生物物理学
作者
Zhe Ni,Xingshi Yuan,Zhengliang Luo,Xiaoqi Zhang,Min Chen,Lee Jia,Jie Wang,Xueqi Shang
标识
DOI:10.1016/j.jpha.2025.101518
摘要
Sensitive detection of microRNA-204 (miR-204) is critical for the early diagnosis and management of osteoarthritis (OA). This work presents a novel surface-enhanced Raman scattering (SERS) biosensor for the ultrasensitive and specific detection of OA-associated miR-204. The platform integrates a self-amplifying nucleic acid circuit with DNAzyme-catalyzed etching of a plasmonic nanoprobe. At its core is a single, rationally designed overhang-containing hairpin probe (O-HP) that functions as both the recognition element and amplification initiator. Upon binding to miR-204, the O-HP triggers polymerase-mediated extension, generating G-quadruplex structures. These structures bind hemin to form DNAzymes that catalyze the localized production of reactive oxygen species (ROS), which subsequently etch the silver shell of the AuNS/Ag@4-ATP SERS nanoprobe. This etching causes the desorption of Raman reporters and a quantifiable 'signal-off' response. This biosensor achieves a remarkably low detection limit of 8.13 fM with a broad dynamic range from 10 fM to 150 nM, and exhibits high specificity, capable of discriminating single-nucleotide variants. Furthermore, it successfully quantified miR-204 in clinical cartilage samples, showing a strong correlation with real-time quantitative polymerase chain reaction results. The modular design of the O-HP also facilitated the adaptation of the platform for detecting miR-21, demonstrating its generalizability. This work provides a robust and versatile biosensing strategy with significant potential for clinical miRNA diagnostics. • Single O-HP probe integrates recognition and amplification, simplifying detection. • DNAzyme catalysis achieves highly specific and reproducible Raman signal readout. • Platform validated in cartilage tissue shows strong diagnostic reliability. • Platform adapts to various nucleic acid markers by simply adjusting the O-HP sequence.
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