化学
劈理(地质)
线粒体DNA
体内
线粒体
生物物理学
核酸
分子生物学
原位
核酸内切酶
基底切除修复术
细胞生物学
核糖核酸
门控
核心
DNA
生物化学
粒线体疾病
荧光
A站点
细胞
细胞色素c
DNA损伤
基因敲除
体外
线粒体融合
作者
Fei Zhang,Yingyu Zhang,Xianwei Zhang,Qionglin Wang,Na Zhao,Jianying Ren,Man Zhang,Peng Wang,Mengxin Zhang,Wancun Zhang
标识
DOI:10.1021/acs.analchem.6c04619
摘要
Abstract Mitochondrial apurinic/apyrimidinic endonuclease 1 (APE1) mislocalization is closely linked to tumor progression and prognosis. Yet, its ubiquitous distribution across mitochondria, cytoplasm, and nucleus makes specific in situ imaging of mitochondrial APE1 highly challenging. Herein, we fabricate a sequentially activated biosensor (C-12S-tFNA) with 12S rRNA-gated spatial regulation of APE1 cleavage site (apurinic/apyrimidinic site, AP site) accessibility, where cytochrome c (cyt c) acts as the targeting motif to drive precise mitochondrial enrichment. In the initial state, the AP site is structurally locked to prevent nonspecific cleavage by extramitochondrial APE1. After entering the mitochondria, mitochondrial 12S rRNA, which is consistently expressed across diverse cell types, hybridizes with the AP-site-containing strand via base complementarity, leading to AP site unlocking. The exposed AP site is subsequently cleaved by mitochondrial APE1, separating the fluorophore-quencher pair and generating a fluorescent signal. Benefiting from the 12S rRNA-gated design, false-positive signals can be effectively suppressed. Experimental findings demonstrate that C-12S-tFNA exhibits high sensitivity (LOD: 0.002 U/mL) and exceptional specificity for mitochondrial APE1. Notably, it distinguishes high-risk from low-risk neuroblastoma (NB) in vivo without the need for surgically resected or biopsied tissue, while exhibiting favorable biocompatibility. Collectively, C-12S-tFNA enables noninvasive, activity-based mitochondrial APE1 imaging and holds promise for improving precision risk stratification in NB.
科研通智能强力驱动
Strongly Powered by AbleSci AI