催化作用
化学
氧化还原
重编程
活性氧
限制
抗氧化剂
氧气
氧化应激
铂金
密度泛函理论
生物物理学
氧化磷酸化
过渡金属
纳米技术
组合化学
激进的
合理设计
血管生成
吸附
作者
Y Zhu,Zehui Lv,Xuejie Cai,Penghui Wei,D. Y. Wang,Zi Wang,Ruoying Wang,Yuxing Wang,X L Yang,Yixin Bian,Jiawei Xu,Xisheng Weng,Liangfeng Wei
摘要
ABSTRACT 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 CeO 2‐x to form CeO 2‐x /Pt SANI, which enhanced catalytic activity via an “island‐sea” synergistic effect. Leveraging the unique charge‐transfer structures and confinement effect of nanoislands, CeO 2‐x /Pt SANI exhibits superior enzymatic activities than CeO 2 , 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 CeO 2‐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.
科研通智能强力驱动
Strongly Powered by AbleSci AI