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Efficiently selective inactivation of Gram-positive bacteria by MCM-41 molecular sieve-supported copper-based self-cascading nanozymes

分子筛 化学 细菌 革兰氏阴性菌 筛子(范畴论) 催化作用 大肠杆菌 有机化学 生物 生物化学 数学 组合数学 基因 遗传学
作者
Xue-Yao Pang,Fanxiang Meng,Ma Cheng,Shao-Zhou Ni,Zi-Han Jia,Bo Li,Yuxiang Liu,Wei‐Wei Gao
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:508: 160948-160948 被引量:6
标识
DOI:10.1016/j.cej.2025.160948
摘要

Gram-positive bacteria can cause a variety of infectious diseases. Selectively inhibiting Gram-positive bacteria will avoid the misuse of broad-spectrum antibiotics, achieve precise treatment, and delay the development of antibiotic resistance. In this work, we successfully developed an MCM-41 molecular sieve-supported copper-based nanozyme composites (MCM-41-Cu 2 O) for selectively combating Gram-positive bacteria. MCM-41, with its porous structure and excellent biocompatibility, not only serves as a carrier but also neutralizes the positive charges of the metal nanozyme, endowing MCM-41-Cu 2 O with negative zeta potentials. This allows it to interact electrostatically with Gram-positive bacteria, facilitating the penetration of free radicals into the bacterial cell membrane, thereby killing the bacteria. MCM-41-Cu 2 O continuously generates endogenous H 2 O 2 through its glutathione oxidase (GSHOx)-like activity·H 2 O 2 serves as the substrate for peroxidase (POD)-like catalytic reactions, producing •OH radicals, thereby enabling a self-cascade reaction. This approach avoids the toxic side effects associated with excessive exogenous H 2 O 2 and offers higher biosafety with potential for antibacterial applications. DFT calculations reveal that compared to Cu 2 O, MCM-41-Cu 2 O exhibits greater adsorption and decomposition capacity for H 2 O 2 , accelerating reaction rates and enhancing POD-like activity. MCM-41-Cu 2 O selectively targets Gram-positive bacteria, achieving a bactericidal rate of up to 99.6% against S. aureus and B. subtilis while leaving E. coli and P. aeruginosa colonies largely unaffected. Reactive oxygen species (ROS) generated by MCM-41-Cu 2 O-5% disrupt bacterial membranes, leading to depolarization, protein leakage, and bacterial death. Additionally, the MCM-41-Cu 2 O nanocomposites exhibit excellent biocompatibility and demonstrate superior in vivo antibacterial efficacy compared to antibiotics, effectively treating wound infections caused by S. aureus . These findings position MCM-41-Cu 2 O as a promising alternative for treating infections caused by Gram-positive bacteria and provide new insights into the antimicrobial applications of molecular sieves.
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