Yang Caiqi, Liu Wen, Chen Shanfeng, Zong Xiaoqing, Yuan Pengfei, Chen Xinjie, Li Xiaodi, Li Yuchao, Xue Wei, Dai Jian
Key Laboratory of Biomaterials of Guangdong Higher Education Institutes, Engineering Technology Research Center of Drug Carrier of Guangdong, Department of Biomedical Engineering, Jinan University, Guangzhou, 510632, China.
Adv Healthc Mater. 2023 May;12(12):e2203035. doi: 10.1002/adhm.202203035. Epub 2023 Jan 30.
Biocatalytic systems based on enzyme cascade reactions have attracted growing interest in the field of biocatalytic medicine. However, it is a major challenge to reasonably construct enzyme cascade reactions with high stability, selectivity, and catalytic efficiency for the in vivo biocatalytic application. Herein, two-in-one engineered glucose oxidase (GOx-Fe ) is fabricated by a biomineralization strategy, through which a nanozyme (Fe NP) is anchored within the inner cavity of GOx. Then, GOx-Fe is immobilized in a pH-sensitive metal-organic framework (MOF) zeolitic imidazolate framework-8 (ZIF-8) to establish a stable and effective MOF-immobilized two-in-one engineered enzyme, GOx-Fe @ZIF-8. In vitro studies show that GOx-Fe @ZIF-8 exhibits excellent stability and high pH/glucose selectivity, and the shorter spacing between cascade enzymes can increase the cascade throughput and effectively improve the reaction efficiency of the enzyme cascade. In vivo experiments exhibit that GOx-Fe @ZIF-8 solves the instability and systemic toxicity of free enzymes, and achieves deep tumor penetration and significant chemodynamic therapeutic efficacy through a pH/glucose-selective enzyme cascade reaction in tumor site. Taken together, such an orchestrated enzyme engineering strategy can effectively improve enzyme stability, selectivity, and enzyme cascade reaction efficiency via chemical transformations, and also provide a promising strategy for the application of biocatalytic cascade reactions in vivo.
基于酶级联反应的生物催化系统在生物催化医学领域引起了越来越多的关注。然而,合理构建具有高稳定性、选择性和催化效率的酶级联反应以用于体内生物催化应用是一项重大挑战。在此,通过生物矿化策略制备了二合一工程化葡萄糖氧化酶(GOx-Fe),通过该策略将纳米酶(Fe NP)锚定在GOx的内腔中。然后,将GOx-Fe固定在pH敏感的金属有机框架(MOF)沸石咪唑酯框架-8(ZIF-8)中,以建立稳定有效的MOF固定化二合一工程酶GOx-Fe@ZIF-8。体外研究表明,GOx-Fe@ZIF-8具有出色的稳定性和高pH/葡萄糖选择性,级联酶之间较短的间距可以提高级联通量并有效提高酶级联反应效率。体内实验表明,GOx-Fe@ZIF-8解决了游离酶的不稳定性和全身毒性问题,并通过肿瘤部位的pH/葡萄糖选择性酶级联反应实现了深部肿瘤渗透和显著的化学动力学治疗效果。综上所述,这种精心设计的酶工程策略可以通过化学转化有效提高酶的稳定性、选择性和酶级联反应效率,也为生物催化级联反应在体内的应用提供了一种有前景的策略。