费斯特共振能量转移
化学
生物物理学
DNA
荧光团
小泡
纳米技术
胞外囊泡
小RNA
荧光
信号(编程语言)
信号转导
核酸
核糖核酸
检出限
溶解
DNA损伤
适体
纳米孔
生物传感器
计算生物学
转导(生物物理学)
细胞生物学
A-DNA
细胞外
DNA纳米技术
癌症生物标志物
分子生物物理学
微泡
作者
Fangzhou Lan,Tian Guan,Aipeng Chen,Yuqing Wang,Xiaoying Zhao,Yuheng Xie,Chaoyong James Yang,Peng Zhang,Xiaoni Fang
标识
DOI:10.1021/acs.analchem.6c04110
摘要
Abstract Conventional analysis of extracellular vesicle (EV)-derived microRNAs relies on vesicle lysis and RNA extraction, which disrupt native vesicular structure and eliminate intravesicular molecular cargoes. Here, we report a rigid DNA tetrahedral nanoprobes-based logic-gated Förster resonance energy transfer (FRET) platform for in situ, amplification-free detection of dual miRNAs directly within intact EVs. Tetrahedral DNA nanostructures (TDNs) targeting miR-21 and miR-141 were engineered with concealed sticky ends that become exposed upon target binding, triggering conditional interparticle assembly and FRET activation exclusively under dual-input conditions. This design physically implements an AND logic operation, converting miRNA coexpression into unified ratiometric output. The rigid tetrahedral scaffold constrains fluorophore spacing and reduces conformational entropy, enabling precise distance-modulated signal transduction with a detection limit of 12.86 pM for dual miRNAs without enzymatic amplification. In clinical plasma samples from 20 prostate cancer (PCa) patients and 20 healthy controls, the ratiometric FRET signal achieved an area under the curve (AUC) of 0.903 and 85.0% diagnostic accuracy, outperforming single-channel measurements. By integrating structural programmability with molecular logic sensor, this strategy transforms EV biomarker analysis from independent signal acquisition into intrinsic nanoscale information processing, establishing a robust platform for noninvasive liquid biopsy.
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