Employing Noble Metal–Porphyrins to Engineer Robust and Highly Active Single‐Atom Nanozymes for Targeted Catalytic Therapy in Nasopharyngeal Carcinoma

Author:

Wang Daji1,Wang Jie12,Gao Xuejiao J.3,Ding Hui2,Yang Ming4,He Zhiheng5,Xie Jiaying5,Zhang Zixia5,Huang Haibing2,Nie Guohui2,Yan Xiyun156,Fan Kelong156ORCID

Affiliation:

1. Nanozyme Synthesis Center Key Laboratory of Quantitative Synthetic Biology Shenzhen Institute of Synthetic Biology Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 China

2. Shenzhen Key Laboratory of Nanozymes and Translational Cancer Research Shenzhen Second People's Hospital/the First Affiliated Hospital of Shenzhen University Health Science Center Shenzhen 518035 China

3. College of Chemistry and Chemical Engineering Jiangxi Normal University Nanchang 330022 China

4. Department of Otolaryngology Shenzhen People's Hospital (The Second Clinical Medical College Jinan University The First Affiliated Hospital Southern University of Science and Technology) Shenzhen 518020 China

5. CAS Engineering Laboratory for Nanozyme Key Laboratory of Biomacromolecules Institute of Biophysics Chinese Academy of Sciences Beijing 100101 China

6. Nanozyme Medical Center School of Basic Medical Sciences Zhengzhou University Zhengzhou 450001 China

Abstract

AbstractSingle‐atom nanozymes (SANzymes) emerge as promising alternatives to conventional enzymes. However, chemical instability limits their application. Here, a systematic synthesis of highly active and stable SANzymes is presented by leveraging noble metal–porphyrins. Four noble metal–porphyrins are successfully synthesized to mimic the active site of natural peroxidases through atomic metal–N coordination anchored to the porphyrin center. These noble metal–porphyrins are integrated into a stable and biocompatible Zr‐based metal–organic framework (MxP, x denoting Ir, Ru, Pt, and Pd). Among these, MIrP demonstrates superior peroxidase‐like activity (685.61 U mg−1), catalytic efficiency, and selectivity compared to horseradish peroxidase (267.71 U mg−1). Mechanistic investigations unveil heightened catalytic activity of MIrP arises from its robust H2O2 adsorption capacity, unique rate‐determining step, and low energy threshold. Crucially, MIrP exhibits remarkable chemical stability under both room temperature and high H2O2 concentrations. Further, through modification with (−)‐Epigallocatechin‐3‐Gallate, a natural ligand for Epstein–Barr virus (EBV)‐encoded latent membrane protein 1, targeted SANzyme (MIrPHE) tailored for EBV‐associated nasopharyngeal carcinoma is engineered. This study not only presents an innovative strategy for augmenting the catalytic activity and chemical stability of SANzymes but also highlights the substantial potential of MIrP as a potent nanomedicine for targeted catalytic tumor therapy.

Funder

National Natural Science Foundation of China

National Basic Research Program of China

Natural Science Foundation of Guangdong Province

Sanming Project of Medicine in Shenzen Municipality

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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