纳米器件
化学
核酸酶
核酸
适体
DNA
生物物理学
细胞器
细胞内
生物化学
费斯特共振能量转移
治疗窗口
核酸内切酶
荧光
折叠(DSP实现)
荧光寿命成像显微镜
脱氧核酶
核糖核酸酶P
细胞生物学
亚细胞定位
纳米技术
核糖核酸
碱基
作者
Qinghong Huang,Xiaole Ruan,Xingnuo Mao,X X Hu,Jiang Li,W Wang,Ying Zhu,Chunhai Fan,Shihua Luo,Zhilei Ge
标识
DOI:10.1021/acs.analchem.6c02187
摘要
Real-time monitoring of biomolecular dynamics at the subcellular level is essential for understanding organellar functions. DNA nanoprobes represent a powerful tool, yet their rapid degradation upon lysosomal entry results in short imaging windows that preclude long-term dynamic monitoring. To address this challenge, we developed an L-DNA-based framework nucleic acid (L-FNA) nanodevice that leverages mirror-image chirality for intrinsic nuclease resistance. By intergrating an ATP-responsive aptamer module into this L-FNA platform, we constructed the ATP-sensing probe L-FNA-apt, enabling prolonged and stable imaging of intraluminal lysosomal ATP. Compared to conventional right-handed DNA probes, L-FNA exhibited an approximately 7-fold longer intracellular retention half-life (17.6 h vs 2.5 h) and L-FNA-apt maintained a functional integrity window exceeding 24 h. In contrast, D-FNA-apt lost most of its responsiveness by 6 h, revealing a 6 h window in which fluorescence persists without functional activity. Using this platform, we demonstrated that L-FNA-apt remains responsive to energy stress for at least 24 h in living cells. By enabling long-term monitoring of intraluminal metabolites through chiral nuclease resistance, this work establishes a framework to distinguish structural presence from functional integrity, providing a reliable tool for studying organelle energy metabolism and related diseases.
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