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介孔氧化铈空心球/酶纳米反应器的构建用于增强级联催化抗菌治疗。

Construction of a Mesoporous Ceria Hollow Sphere/Enzyme Nanoreactor for Enhanced Cascade Catalytic Antibacterial Therapy.

机构信息

Institute of Analytical Chemistry and Instrument for Life Science, The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, P. R. China.

State Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering, College of Chemistry and Chemical Engineering, Ningxia University, Ningxia 750021, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2021 Sep 1;13(34):40302-40314. doi: 10.1021/acsami.1c10821. Epub 2021 Aug 20.

Abstract

Nanozyme has been regarded as one of the antibacterial agents to kill bacteria via a Fenton-like reaction in the presence of HO. However, it still suffers drawbacks such as insufficient catalytic activity in near-neutral conditions and the requirement of high HO levels, which would minimize the side effects to healthy tissues. Herein, a mesoporous ceria hollow sphere/enzyme nanoreactor is constructed by loading glucose oxidase in the mesoporous ceria hollow sphere nanozyme. Due to the mesoporous framework, large internal voids, and high specific surface area, the obtained nanoreactor can effectively convert the nontoxic glucose into highly toxic hydroxyl radicals via a cascade catalytic reaction. Moreover, the generated glucose acid can decrease the localized pH value, further boosting the peroxidase-like catalytic performance of mesoporous ceria. The generated hydroxyl radicals could damage severely the cell structure of the bacteria and prevent biofilm formation. Moreover, the experiments demonstrate that the nanoreactor can efficiently eliminate 99.9% of bacteria in the wound tissues and prevent persistent inflammation without damage to normal tissues in mice. This work provides a rational design of a nanoreactor with enhanced catalytic activity, which can covert glucose to hydroxyl radicals and exhibits potential applications in antibacterial therapy.

摘要

纳米酶被认为是通过在 HO 存在下发生类 Fenton 反应来杀死细菌的抗菌剂之一。然而,它仍然存在一些缺点,如在近中性条件下催化活性不足和需要高 HO 水平,这会最大限度地减少对健康组织的副作用。本文通过将葡萄糖氧化酶装载到介孔氧化铈中空球纳米酶中,构建了介孔氧化铈中空球/酶纳米反应器。由于介孔骨架、大的内部空隙和高的比表面积,所得到的纳米反应器可以有效地通过级联催化反应将无毒的葡萄糖转化为高毒性的羟基自由基。此外,生成的葡萄糖酸可以降低局部 pH 值,进一步增强介孔氧化铈的过氧化物酶样催化性能。产生的羟基自由基可以严重破坏细菌的细胞结构,防止生物膜的形成。此外,实验表明,该纳米反应器在小鼠体内能够有效清除伤口组织中 99.9%的细菌,防止持续炎症,而不会对正常组织造成损伤。这项工作为具有增强催化活性的纳米反应器的合理设计提供了思路,可将葡萄糖转化为羟基自由基,并有望在抗菌治疗中得到应用。

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