Turning Silica into Enzymes by Hydrogenation: Simultaneously Achieving Oxygen Vacancy Engineering and Tumor Adaptive Accumulation for NIR‐II‐Potentiated Therapy

Author:

Liu Mengting1,Ye Jin1,Liu Shuang1,Xu Xiuping1,Cui Yujie1,Qu Jiawei1,Zhang Zhiyong1,Zhang Kefen2,Niu Na1,Chen Ligang1,Fu Yujie3,Xu Jiating14ORCID

Affiliation:

1. Key Laboratory of Forest Plant Ecology Ministry of Education College of Chemistry Chemical Engineering and Resource Utilization Northeast Forestry University Harbin 150001 P. R. China

2. Guangxi University of Science and Technology Liuzhou 545006 P. R. China

3. College of Biological Sciences and Technology Beijing Forestry University Beijing 100083 P. R. China

4. Heilongjiang Provincial Key Laboratory of Ecological Utilization of Forestry‐Based Active Substances Northeast Forestry University Harbin 150040 P. R. China

Abstract

AbstractMolybdenum (Mo)‐based nanozymes have been attracting increasingly extensive attention in photocatalytic antitumor field due to their versatile physicochemical properties, whereas the limited light capture rate and high recombination rate of photogenerated carriers seriously impedes their further development. Herein, MoO3‐starring silica nanozymes with hyaluronic acid modification (HMMSNs@HA) are innovated by hydrogenation to simultaneously achieve oxygen vacancies (OVs) engineering and tumor adaptive accumulation for the second near‐infrared (NIR‐II, 1064 nm) light‐potentiated thermal‐catalytic therapy. The hydrogenation‐regulated OVs can narrow the band gap of HMMSNs from 2.66 to 1.16 eV, achieving optimal optical absorption in NIR‐II region. Additionally, HMMSNs hold high separation efficacy of electron‐hole pairs to facilitate the generation of reactive oxygen species under laser irradiation. Significantly, HMMSNs@HA are stable in tumor microenvironment, while can degrade in normal physiological conditions, thereby offering tumor‐adaptive accumulation. Synchrotron radiation‐based extended X‐ray absorption fine structure spectroscopy reveals that OVs enabling the Mo4+ and Mo5+ formation, which can react with tumor endogenous H2O2 to produce hydroxyl radicals. Furthermore, OVs‐induced localized surface plasmon resonance effect endows the nanozymes with photothermal conversion efficacy of 32.3%, which affords NIR‐II‐excited photonic hyperthermia‐enhances catalytic therapy. All the experimental results demonstrate the high safety and superiorities of HMMSNs@HA for NIR‐II‐initiate therapy.

Funder

National Key Research and Development Program of China

Higher Education Discipline Innovation Project

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Natural Science Foundation of Heilongjiang Province

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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