An Erythrocyte‐Templated Iron Single‐Atom Nanozyme for Wound Healing

Author:

Wang Xiaonan12,Liu Ting34,Chen Mengxia35,Liang Qian1,Jiang Jing1,Chen Lei1,Fan Kelong16,Zhang Jinhua3,Gao Lizeng16ORCID

Affiliation:

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

2. School of Life Sciences University of Chinese Academy of Sciences Haidian Beijing 100049 China

3. College of Life Science and Bioengineering Beijing Jiaotong University Haidian Beijing 100044 China

4. School of Life Science and Technology Jinan University Guangzhou Guangdong 510632 China

5. School of Life Sciences Jilin Normal University Siping Jilin 136000 China

6. Joint Laboratory of Nanozymes in Zhengzhou University Academy of Medical Sciences Zhengzhou University Zhengzhou Henan 450000 China

Abstract

AbstractIron single‐atom nanozymes represent a promising artificial enzyme with superior activity owing to uniform active sites that can precisely mimic active center of nature enzymes. However, current synthetic strategies are hard to guarantee each active site at single‐atom state. In this work, an erythrocyte‐templated strategy by utilizing intrinsic hemin active center of hemoglobin as sing‐atom source for nanozyme formation is developed. By combining cell fixation, porous salinization, and high‐temperature carbonization, erythrocytes are successfully served as uniform templates to synthesize nanozymes with fully single‐atom FeN4 active sites which derived from hemin of hemoglobin, resulting in an enhanced peroxidase (POD)‐like activity. Interestingly, the catalytic activity of erythrocyte‐templated nanozyme (ETN) shows dependence on animal species, among which murine ETN performed superior catalytic efficiency. In addition, the as‐prepared ETNs display a honeycomb‐like network structure, serving as a sponge to accelerate hemostasis based on the interactions with prothrombin and fibrinogen. These features enable ETN to effectively kill methicillin‐resistant Staphylococcus aureus (MRSA) by combining POD‐like catalysis with near‐infrared (NIR) induced photothermal effect, and subsequently suitable to promote wound healing. This study provides a proof‐of‐concept for facile fabrication of multifunctional nanozymes with uniform single‐atom active sites by utilizing intrinsic iron structure characteristics of biogenic source like erythrocytes.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Innovative Research Group Project of the National Natural Science Foundation of China

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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