磁共振成像
癌基因
增强子
连接器
DNA
癌症
癌症研究
适体
材料科学
基因
分子生物学
核磁共振
超顺磁性
化学
纳米颗粒
基因组DNA
计算生物学
临床诊断
DNA测序
寡核苷酸
纳米技术
磁性纳米粒子
生物
生物标志物
作者
Wenyue Li,Runjie Wang,Xinyi Zhang,Shuai Wu,Peisen Zhang,Hongxiang Feng,Yue Lan,Zhuo Ao,Yi Hou
标识
DOI:10.1016/j.mtbio.2026.102936
摘要
Genomic instability is the important foundation and feature of cancer; hence, the precise oncogene detection is crucial for early diagnosis and pathological analysis of tumors. However, the in vivo oncogene-imaging is confronted with great challenge, due to the extremely low copies of oncogene in cancer cells. Herein, we proposed a strategy of T 1 / T 2 magnetic resonance imaging (MRI) based on magnetic resonance tuning (MRET) to analyze tumor-associated miRNA quantitatively. The superparamagnetic quencher Fe 3 O 4 nanoparticles and the paramagnetic enhancer Gd-DTPA were integrated by the DNA linker. The AS1411 aptamer was embedded at the end of the DNA linker to effectively target nucleolins that are overexpressed in tumor cells. As hybridization with targeted miRNA, the Gd 3+ labeled tumor-associated nucleotide sequence is released, enhancing T 1 signals and enabling specific localization and quantification of the targeted miRNA. The MRET effect was verified in vitro through mixing with varying concentrations of miR-21. Enhanced T 2 signals and activated T 1 signals were visualized in 4T1 or CT26 subcutaneous tumor models in vivo . Ultimately, the quantitative relation between MRI signals and local miR-21 concentration was established in vivo . These results indicated the potential of nanoprobes for tumor-related genes diagnosis and quantification, further affirming the possibility of prompt and precise tumor diagnosis. The T 1 signals of magnetic resonance imaging (MRI) nanoprobes were activated via magnetic resonance tuning (MRET), enabling quantitative visualization the cancer-related miR-21 in vivo . • RNA-triggered nanoprobes were developed via MRET strategy upon RNA hybridization. • The nanoprobes enabled in vivo tumor detection through T 1 / T 2 dual-modality MRI. • The nanoprobes enabled in vivo quantitative visualization of miR-21.
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