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Oxygen Vacancy-Enriched Platinum Single-Atom Nanozyme Wrapped in Nanoislands: Unlocking Catalytic Activity and Reprogramming Redox Microenvironment for Osteonecrosis Repair

delete2026-05-26
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OA
AI
朱阳 (Yang Zhu) *
Z
Zehui Lv
X
Xuejie Cai
P
Penghui Wei
D
Dengliang Wang
Z
Zhao Wang
R
Ruoying Wang
Y
Yingjie Wang
X
Xingdong Yang
Y
Yixin Bian
J
Jiawei Xu
X
Xisheng Weng *
L
Liangfeng Wei *
DOI:10.1002/advs.75840delete
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Abstract

Abstract

En 中文
Excessive accumulation of reactive oxygen species (ROS) impairs bone regeneration and angiogenesis in steroid-induced osteonecrosis of the femoral head (SONFH), yet current antioxidant therapies remain limited by low catalytic efficiency and short duration. Single-atom nanozymes (SANs), with their well-defined structures and maximal atomic efficiency, show great potential for treating ROS-induced diseases by mimicking natural enzymes. However, the strong binding between transition metal sites and electron-donating intermediates (e.g., O*, OH*, OOH*) creates high energy barriers, limiting their catalytic activities. Herein, single-atomic platinum is successfully embedded into CeO2-x to form CeO2-x/Pt SANI, which enhanced catalytic activity via an “island-sea” synergistic effect. Leveraging the unique charge-transfer structures and confinement effect of nanoislands, CeO2-x/Pt SANI exhibits superior enzymatic activities than CeO2, attribute to the island-sea synergistic effect that facilitates strong electron transfer, as proved by density functional theory (DFT) calculations. DFT calculations further demonstrate that Pt incorporation increases oxygen vacancies and tunes the d-band center toward the Fermi level, facilitating ROS adsorption and accelerating redox reactions. Single-cell sequencing and experimental results confirm that CeO2-x/Pt SANI reprograms the oxidative microenvironment, leading to significant therapeutic effects in SONFH. This study provides insights into the rational design of an advanced “island-sea” structured single-atom nanozyme to optimize the catalytic activity.
Keywords:
cerium dioxide
nanoislands
osteonecrosis
oxygen vacancies
single atom nanozyme
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Journal

Advanced Science cover
Advanced Science
IF:
14.1
Papers:
1.7W
Citations:
11.5W

Organization

F
fujian medical university
Scholars:
2.7W
Papers: 1.3W
Citations: 13
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