磁共振成像
磁共振血管造影
材料科学
膜
核磁共振
分辨率(逻辑)
生物医学工程
高分辨率
放射科
医学
分析化学(期刊)
纳米技术
色谱法
物理
地质学
生物
遥感
人工智能
化学
遗传学
计算机科学
作者
Fangfei He,Lichong Zhu,Xiaohan Zhou,Peisen Zhang,Junwei Cheng,Yuanyuan Qiao,Yicheng Feng,Saisai Yue,Man Xu,Jiaoqiong Guan,Xiaoming Li,Zhuo Ao,Meng Qin,Yi Hou,Dong Han
标识
DOI:10.1021/acsami.2c03530
摘要
Enhanced angiography based on magnetic resonance imaging (MRI) has emerged as a noninvasive, robust, and high-resolution imaging technique for the clinical evaluation of vascular diseases. However, the effects of clinical Gd-chelating contrast agents are unsatisfactory for MRI contrast enhancement owing to their short blood half-life caused by rapid vascular extravasation, especially in microvessels. To address these issues, nanoprobes based on red blood cell membrane-coated ultrasmall NaGdF4 nanoparticles that exhibit much higher longitudinal molar relaxivity (r1) than the clinically used contrast agent gadolinium diethylenetriaminepentaacetic acid have been developed. Furthermore, the appropriate hydrodynamic diameter and stealth nature aid the nanoprobes to reside longer within the blood vessels without extravasation, thereby increasing the contrast between the blood vessels and surrounding tissues. Through probe-enhanced three-dimensional (3D) dynamic contrast-enhanced MR angiography, the main arteries and veins of the mouse were readily discernible, and even tiny vessels with sub-millimeter diameters could be clearly depicted. With this level of outstanding MR angiography performance, the embolization and recanalization processes of the carotid artery can be serially monitored with high imaging resolution using only a single injection. Additionally, the results of clearance studies and the toxicity tests further highlight the safety features of the nanoprobe. To summarize, the nanoprobes used in this study exhibit less extravascular leakage and a longer blood half-life, thus successfully overcoming the defects of the conventional low-molecular-weight Gd-based contrast agents and demonstrating their potential usefulness in enhanced MR angiography.
科研通智能强力驱动
Strongly Powered by AbleSci AI