Zu Yan, Wang Ziyu, Yao Huiqin, Yan Liang
CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, China.
College of Medical and Biological lnformation Engineering, Northeastern University, Shenyang 110170, China.
J Mater Chem B. 2023 Apr 5;11(14):3071-3088. doi: 10.1039/d2tb02751h.
Radiotherapy (RT), the most commonly used treatment method in clinics, shows unique advantages such as strong penetration, high energy intensity, and low systemic side effects. However, tumor hypoxia seriously hinders the therapeutic effect of RT. Hypoxia is a common characteristic of locally advanced solid tumor microenvironments, which leads to the proliferation, invasion and metastasis of tumor cells. In addition, oxygen consumption during RT will further aggravate tumor hypoxia, causing a variety of adverse side effects. In recent years, various biocatalytic nanomaterials (BCNs) have been explored to regulate and reverse tumor hypoxia microenvironments during RT. In this review, the most recent efforts toward developing oxygen-generating BCNs in relieving tumor hypoxia in RT are focused upon. The classification, engineering nanocatalytical activity of oxygen-generating BCNs and combined therapy based on these BCNs are systematically introduced and discussed. The challenges and prospects of these oxygen-generating BCNs in RT applications are also summarized.
放射治疗(RT)是临床上最常用的治疗方法,具有穿透性强、能量强度高、全身副作用低等独特优势。然而,肿瘤缺氧严重阻碍了放射治疗的疗效。缺氧是局部晚期实体瘤微环境的一个共同特征,它会导致肿瘤细胞的增殖、侵袭和转移。此外,放射治疗过程中的氧消耗会进一步加重肿瘤缺氧,引发各种不良副作用。近年来,人们探索了各种生物催化纳米材料(BCNs)来在放射治疗过程中调节和逆转肿瘤缺氧微环境。在这篇综述中,重点关注了在开发用于缓解放射治疗中肿瘤缺氧的产氧BCNs方面的最新进展。系统地介绍和讨论了产氧BCNs的分类、工程纳米催化活性以及基于这些BCNs的联合治疗。还总结了这些产氧BCNs在放射治疗应用中的挑战和前景。