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Atomic-level regulation of the coordination structure in single-atom Fe nanozymes for tumor catalytic therapy
Xinyu Gao1, Yang Guo1, Sihan Wang1
1Department of Neurology, Brain Ultrasound, The First Affiliated Hospital of Harbin Medical University, Harbin 150001, China.
Abstract:
Single-atom nanozymes (SAzymes) exhibit efficient and stable catalytic performance due to their tunable electronic configurations and optimized atomic utilization. However, designing SAzymes with well-defined coordination environments and clarifying their structure-activity relationships for tumor therapy pose significant challenges. This study introduces FeN4-Pyrrolic single-atom nanozymes (FeN4-Pyrrolic SAzymes), developed by precisely modulating the first-shell coordination environment. Through X-ray absorption fine structure analyses and density functional theory calculations, the well-defined active centers of FeN4-Pyrrolic SAzymes are shown to possess higher energy levels in the dxz, dyz, and dz2 orbitals than those of FeN4-Pyridinic SAzymes, resulting in stronger interactions with reaction intermediates and enhanced intrinsic activity along the peroxidase (POD)-like reaction pathway. Both in vitro and in vivo experiments demonstrate that, after endocytosis by tumor cells, FeN4-Pyrrolic SAzymes promote reactive oxygen species (ROS) accumulation through their exceptional POD-like activity, leading to oxidative damage and subsequent apoptosis. Additionally, their glutathione oxidase-like activity indirectly elevates lipid peroxidation levels, thereby facilitating ferroptosis. By modulating multiple cell death pathways, FeN4-Pyrrolic SAzymes synergistically suppress tumor growth. This study provides novel insights into the fine regulation of coordination environments to improve the anti-tumor performance of nanozymes.
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