适体
细胞外小泡
细胞生物学
融合蛋白
细胞外
信号转导
信号(编程语言)
生物标志物
功能(生物学)
计算生物学
化学
蛋白质功能
生物
细胞信号
微泡
胞外囊泡
分离(微生物学)
信号肽
膜蛋白
靶蛋白
生物化学
纳米技术
生物传感器
膜
生物分析
临床诊断
蛋白质靶向
转运蛋白
特异性抗体
作者
Qiaoxuan Zhang,Yaling Li,Yuanzhe Li,Liqiao Han,Jun Yan,Min Zhan,Ting Liu,Peifeng Ke,Qiqin Wang,Xianzhang Huang
摘要
The detection of non-nucleic acid targets encapsulated in extracellular vesicles (EVs) faces two major challenges: (1) difficulties in efficient isolation and the risk of content degradation, and (2) the low abundance of target molecules encapsulated in EVs always leads to failed signal transduction and inadequate output signal intensity. To overcome these limitations, we propose a high-efficiency in-vesicle analysis strategy that integrates targeting probe delivery and regulation by protein signal amplification. By applying aptamer-mediated membrane fusion and "locked-activated" CRISPR-Cas12a-AcrVA1 (LACA) for protein signal regulation, we fabricated a yly12-aptamer-functionalized self-assembled nanovesicle which encapsulate LACA-system (yly12-lipo@Cas12a nanovesicle) as an in-vesicle bioanalytical platform. Leveraging the high specificity of the aptamer and the regulatory function of AcrVA1 in selectively modulating Cas12a activity, the platform enables highly specifiec and sensitive detection, offering advantages of simple operation and versatility across platforms within only 2.5 h. Clinical analysis demonstrated effective differentiation between patients and healthy controls, yielding high diagnostic performance with an AUC of 0.965. The proposed platform shows great potential for EV-carrying protein biomarker analysis and has broad prospects for the disease's diagnosis in clinical settings.
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