TY - JOUR
T1 - Atomic-Scale Full-Size Engineering of Platinum Nanozymes Enables High-Efficiency Catalytic Therapy
AU - Zhao, Xinshuo
AU - Hong, Chaoyi
AU - Xu, Hao
AU - Zhang, Ruofei
AU - Feng, Yutong
AU - Yang, Xiubo
AU - Sun, Leming
AU - Gao, Zhe
AU - Yang, Hui
AU - Qin, Yong
AU - Fan, Kelong
AU - Zhang, Jiankang
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/7/7
Y1 - 2026/7/7
N2 - Metal particle size has a significant influence on the activity of nanozymes, yet size-dependent nanozymatic catalysis under the same metal loadings in full scale (from single atom, cluster to nanoparticle) is a challenging task and has been rarely reported. Herein, porous SiO2 nanoflower surface-confined Pt-based nanozymes with the same metal loadings but different particle sizes were rationally designed and synthesized for antibacterial and cascade catalytic tumor therapy. The particle size–activity relationship is well established, presenting a volcanic curve, and the PtNC/SiO2 nanocluster (NC) nanozyme exhibits optimized peroxidase-like activity and bactericidal efficacy compared with SAzyme and nanozyme. Furthermore, a synergistic therapeutic platform (Lap@PtNC/SiO2) is constructed through the adsorption of the prodrug β-lapachone (Lap), achieving high-efficiency cascade enzymatic catalysis for tumor therapy thereby. The cluster nanozymes not only present optimized activity during the full-size engineering but also demonstrate great potential in next-generation antibacterial and tumor catalytic therapy.
AB - Metal particle size has a significant influence on the activity of nanozymes, yet size-dependent nanozymatic catalysis under the same metal loadings in full scale (from single atom, cluster to nanoparticle) is a challenging task and has been rarely reported. Herein, porous SiO2 nanoflower surface-confined Pt-based nanozymes with the same metal loadings but different particle sizes were rationally designed and synthesized for antibacterial and cascade catalytic tumor therapy. The particle size–activity relationship is well established, presenting a volcanic curve, and the PtNC/SiO2 nanocluster (NC) nanozyme exhibits optimized peroxidase-like activity and bactericidal efficacy compared with SAzyme and nanozyme. Furthermore, a synergistic therapeutic platform (Lap@PtNC/SiO2) is constructed through the adsorption of the prodrug β-lapachone (Lap), achieving high-efficiency cascade enzymatic catalysis for tumor therapy thereby. The cluster nanozymes not only present optimized activity during the full-size engineering but also demonstrate great potential in next-generation antibacterial and tumor catalytic therapy.
KW - atomic layer deposition
KW - cascade catalytic tumor therapy
KW - peroxidase-like activity
KW - size-dependent nanozymatic catalysis
KW - volcano-type relationship
UR - https://www.scopus.com/pages/publications/105044175673
U2 - 10.1021/acsnano.6c06389
DO - 10.1021/acsnano.6c06389
M3 - 文章
AN - SCOPUS:105044175673
SN - 1936-0851
VL - 20
SP - 19056
EP - 19068
JO - ACS Nano
JF - ACS Nano
IS - 26
ER -