Yuan Xunchun, Yu Haojie, Wang Li, Uddin Md Alim, Ouyang Chenguang
State Key Laboratory of Chemical Engineering, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou 310058, P. R. China.
Mater Horiz. 2025 Mar 17;12(6):1726-1756. doi: 10.1039/d4mh00995a.
Magnetic resonance imaging (MRI) is considered one of the most valuable diagnostic technologies in the 21st century. To enhance the image contrast of anatomical features, MRI contrast agents have been widely used in clinical MRI diagnosis, especially those based on gadolinium, manganese, and iron oxide. However, these metal-based MRI contrast agents show potential toxicity to patients, which urges researchers to develop novel MRI contrast agents that can replace metal-based MRI contrast agents. Metal-free nitroxide radical contrast agents (NRCAs) effectively overcome the shortcomings of metal-based contrast agents and also have many advantages, including good biocompatibility, prolonged systemic circulation time, and easily functionalized structures. Importantly, since NRCAs acquire MRI signals with standard tissue water H relaxation mechanisms, they have great potential to realize clinical translation among many metal-free MRI contrast agents. At present, NRCAs have been proposed as an effective substitute for metal-based MRI contrast agents. Herein, this review first briefly introduces NRCAs, including their composition, classification, mechanism of action, application performances and advantages. Then, this review highlights the progress of NRCAs, including small molecule-based NRCAs and polymer-based NRCAs. Finally, this review also discusses the challenges and future perspectives of NRCAs.
磁共振成像(MRI)被认为是21世纪最有价值的诊断技术之一。为了增强解剖特征的图像对比度,MRI造影剂已广泛应用于临床MRI诊断,尤其是基于钆、锰和氧化铁的造影剂。然而,这些基于金属的MRI造影剂对患者显示出潜在毒性,这促使研究人员开发能够替代基于金属的MRI造影剂的新型MRI造影剂。无金属氮氧化物自由基造影剂(NRCAs)有效克服了基于金属的造影剂的缺点,并且还具有许多优点,包括良好的生物相容性、延长的全身循环时间和易于功能化的结构。重要的是,由于NRCAs通过标准组织水H弛豫机制获取MRI信号,它们在众多无金属MRI造影剂中具有实现临床转化的巨大潜力。目前,NRCAs已被提议作为基于金属的MRI造影剂的有效替代品。在此,本综述首先简要介绍NRCAs,包括它们的组成、分类、作用机制、应用性能和优点。然后,本综述重点介绍NRCAs的进展,包括基于小分子的NRCAs和基于聚合物的NRCAs。最后,本综述还讨论了NRCAs的挑战和未来前景。
J Mater Chem B. 2024-7-24