Li Zhen-Li, Wu Han, Zhu Jia-Qi, Sun Li-Yang, Tong Xiang-Min, Huang Dong-Sheng, Yang Tian
Department of General Surgery, Cancer Center, Division of Hepatobiliary and Pancreatic Surgery Zhejiang Provincial People's Hospital (People's Hospital of Hangzhou Medical College) Hangzhou Zhejiang 310014 China.
School of Public Health Hangzhou Medical College Hangzhou Zhejiang 310014 China.
Small Sci. 2022 Jun 3;2(7):2200024. doi: 10.1002/smsc.202200024. eCollection 2022 Jul.
Nanozyme has been experiencing rapid development in biomedical applications involving biosensors, immunoassays, and antitumor agents in recent years due to its tunable catalytic performance and desirable biocompatibility. Since the first exploration of nanozyme-based Fenton reaction for nanocatalytic therapy (NCT) against tumor, a variety of Fenton (and Fenton-like) nanozymes, such as FeO, transition metal ions (Co, Cu, and Mn), and metal-organic frameworks (MOFs), have been proved as desirable candidates for tumor therapy, and the modulation of the tumor microenvironment (TME) is determined to be a feasible approach to improve the catalytic efficiency for in situ tumor suppression. At present, increasing studies have focused on improving the therapeutic efficiency of NCT by formulating multifunctional nanozyme-based systems to satisfy the demand for versatile and optimized applications. Herein, updated insights into the novel strategies of 1) achieving highly effective nanocatalytic reactions, including the modification of nanocatalysts and TME-modulating approaches, are provided and 2) the design and formulation of multifunctional nanozyme-based systems which achieve targeted, synergistic therapy, and theranostic applications are analyzed and concluded. Concise and concentrated comments and outlooks are illuminated at the end to outline the perspectives and the remaining challenges for the next-step explorations on further biomedical translation of NCT.
近年来,由于其可调节的催化性能和良好的生物相容性,纳米酶在生物医学应用中,包括生物传感器、免疫测定和抗肿瘤药物等方面得到了快速发展。自从首次探索基于纳米酶的芬顿反应用于肿瘤的纳米催化治疗(NCT)以来,各种芬顿(和类芬顿)纳米酶,如FeO、过渡金属离子(Co、Cu和Mn)以及金属有机框架(MOF),已被证明是肿瘤治疗的理想候选者,并且调节肿瘤微环境(TME)被确定为提高原位肿瘤抑制催化效率的一种可行方法。目前,越来越多的研究集中在通过构建基于多功能纳米酶的系统来提高NCT的治疗效率,以满足多功能和优化应用的需求。在此,提供了对以下新策略的最新见解:1)实现高效的纳米催化反应,包括纳米催化剂的修饰和TME调节方法;2)分析并总结了基于多功能纳米酶的系统的设计和构建,这些系统实现了靶向、协同治疗和诊疗应用。最后给出了简洁而集中的评论和展望,以概述NCT进一步生物医学转化的下一步探索的前景和剩余挑战。