School of Public Health, Xinxiang Medical University, Xinxiang, 453003, P. R. China.
College of Chemistry and Chemical Engineering, Xinyang Key Laboratory of Functional Nanomaterials for Bioanalysis, Xinyang Normal University, Xinyang, 464000, P. R. China.
Adv Healthc Mater. 2022 Apr;11(8):e2102079. doi: 10.1002/adhm.202102079. Epub 2021 Dec 19.
Multicolor imaging, which maps the distribution of different targets, is important for in vivo molecular imaging and clinical diagnosis. Fluorine 19 magnetic resonance imaging ( F MRI) is a promising technique because of unique insights without endogenous background or tissue penetration limit. Thus multicolor F MRI probes, which can sense a wide variety of molecular species, are expected to help elucidate the biomolecular networks in complex biological systems. Here, a versatile model of activatable probes based on fluorinated ionic liquids (ILs) for multicolor F MRI is reported. Three types of ILs at different chemical shifts are loaded in nanocarriers and sealed by three stimuli-sensitive copolymers, leading to "off" F signals. The coating polymers specifically respond to their environmental stimuli, then degrade to release the loaded ILs, causing F signals recovery. The nanoprobes are utilized for non-invasive detection of tumor hallmarks, which are distinguished by their individual colors in one living mouse, without interference between each other. This multicolor imaging strategy, which adopts modular construction of various ILs and stimuli-responsive polymers, will allow more comprehensive sensing of multiple biological targets, thus, opening a new realm in mechanistic understanding of complex pathophysiologic processes in vivo.
多色成像技术可以绘制不同目标的分布图谱,对于活体分子成像和临床诊断非常重要。氟-19 磁共振成像( 19 F MRI)是一种很有前途的技术,因为它具有独特的见解,不存在内源性背景或组织穿透限制。因此,能够感应多种分子种类的多色 19 F MRI 探针有望帮助阐明复杂生物系统中的生物分子网络。在这里,报道了一种基于氟化离子液体(ILs)的用于多色 19 F MRI 的多功能激活探针模型。将三种化学位移不同的 ILs 装载在纳米载体中,并由三种对刺激敏感的共聚物密封,从而产生“关闭”的 19 F 信号。涂层聚合物特异性地响应其环境刺激,然后降解以释放负载的 IL,导致 19 F 信号恢复。该纳米探针可用于非侵入性检测肿瘤标志物,在一只活老鼠中,它们通过各自的颜色来区分,彼此之间没有干扰。这种采用各种 IL 和对刺激响应聚合物的模块化构建的多色成像策略将允许对多个生物靶标进行更全面的感应,从而在体内复杂病理生理过程的机制理解方面开辟新的领域。