Biocompatible nanozyme with dual catalytic activities for high-performance multimodality therapy against glioblastoma

Guihong Lu, Xiaoyan Li, Wenfei Xu, Fan Zhang, Xiang Chen, Huibin Wu, Haibing Dai*, Feng Li*, Weidong Nie*

*此作品的通讯作者

科研成果: 期刊稿件文章同行评审

摘要

Nanozymes based on metals have been regarded as a promising candidate in the metabolic reprogramming of low-survival, refractory glioblastoma multiforme (GBM). However, due to size limitations, nanozymes struggle to balance catalytic activity with the ability to cross the blood-brain barrier (BBB), limiting their efficiency in GBM therapy. Herein, we establish a hybrid nanocluster, AuMn NCs, by cross-linking ultrasmall nano-gold (Au) and manganese oxide (MnO2), which overcomes the size requirement conflict for integrating catalytic activities, long-period circulation, photothermal effect, glucose consumption, and chemodynamic effect for multimodality treatment against GBM. After administered intravenously, the overall large-size AuMn NCs can escape kidney filtration and cross the BBB for GBM accumulation. Then the individual ultrasmall nano-MnO2 components effectively catalyze H2O2 degradation as catalase to produce oxygen, which is utilized by individual ultrasmall nano-Au components to consume glucose as glucose oxidase for starvation therapy. The H2O2 generated during Au-catalyzed glucose consumption further facilitates MnO2 catalytic activity. Such positive feedback overwhelmingly intervenes in the glucose metabolism of GBM. Concurrently, clustered Au-induced photothermal effect and released Mn2+-induced chemodynamic effect further contribute to eliminating GBM cells. The versatile clustered nanozyme offers a feasible strategy for the multimodality intervention of GBM.

源语言英语
文章编号035007
期刊Biomedical Materials (Bristol)
20
3
DOI
出版状态已出版 - 1 5月 2025
已对外发布

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