适体
介孔二氧化硅
结合
纳米颗粒
磁共振成像
纳米技术
化学
材料科学
磁性纳米粒子
凝血酶
分子成像
核磁共振
组合化学
生物物理学
介孔材料
物理
生物化学
放射科
数学分析
血小板
生物技术
生物
催化作用
医学
遗传学
免疫学
体内
数学
作者
Daniel J. Cooke,Esther Y. Maier,Tyler L. King,Haoding Lin,Santiago Hendrichs,S. K. Lee,Noushaba Nusrat Mafy,Kathleen M. Scott,Yi Lu,Emily L. Que
标识
DOI:10.1002/anie.202312322
摘要
Fluorine magnetic resonance imaging (19 F MRI) has emerged as an attractive alternative to conventional 1 H MRI due to enhanced specificity deriving from negligible background signal in this modality. We report a dual nanoparticle conjugate (DNC) platform as an aptamer-based sensor for use in 19 F MRI. DNC consists of core-shell nanoparticles with a liquid perfluorocarbon core and a mesoporous silica shell (19 F-MSNs), which give a robust 19 F MR signal, and superparamagnetic iron oxide nanoparticles (SPIONs) as magnetic quenchers. Due to the strong magnetic quenching effects of SPIONs, this platform is uniquely sensitive and functions with a low concentration of SPIONs (4 equivalents) relative to 19 F-MSNs. The probe functions as a "turn-on" sensor using target-induced dissociation of DNA aptamers. The thrombin binding aptamer was incorporated as a proof-of-concept (DNCThr ), and we demonstrate a significant increase in 19 F MR signal intensity when DNCThr is incubated with human α-thrombin. This proof-of-concept probe is highly versatile and can be adapted to sense ATP and kanamycin as well. Importantly, DNCThr generates a robust 19 F MRI "hot-spot" signal in response to thrombin in live mice, establishing this platform as a practical, versatile, and biologically relevant molecular imaging probe.
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