Geometric Tuning of Single‐Atom FeN4 Sites via Edge‐Generation Enhances Multi‐Enzymatic Properties

Author:

Kim Kang12,Lee Jaewoo12,Park Ok Kyu13,Kim Jongseung4,Kim Jiheon12ORCID,Lee Donghyun2,Paidi Vinod K.5ORCID,Jung Euiyeon12,Lee Hyeon Seok12ORCID,Lee Bowon12,Lee Chan Woo12ORCID,Ko Wonjae12,Lee Kangjae12,Jung Yoon12,Lee Changha2,Lee Nohyun6ORCID,Back Seoin4ORCID,Choi Seung Hong13,Hyeon Taeghwan12ORCID

Affiliation:

1. Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea

2. School of Chemical and Biological Engineering and Institute of Chemical Processes Seoul National University Seoul 08826 Republic of Korea

3. Department of Radiology Seoul National University College of Medicine Seoul 03080 Republic of Korea

4. Department of Chemical and Biomolecular Engineering Institute of Emergent Materials Sogang University Seoul 04107 Republic of Korea

5. European Synchrotron Radiation Facility Grenoble 38043 Cedex 9 France

6. School of Advanced Materials Engineering Kookmin University Seoul 02707 Republic of Korea

Abstract

AbstractSingle‐atom nanozymes (SAzymes) are considered promising alternatives to natural enzymes. The catalytic performance of SAzymes featuring homogeneous, well‐defined active structures can be enhanced through elucidating structure‐activity relationship and tailoring physicochemical properties. However, manipulating enzymatic properties through structural variation is an underdeveloped approach. Herein, the synthesis of edge‐rich Fe single‐atom nanozymes (FeNC‐edge) via an H2O2‐mediated edge generation is reported. By controlling the number of edge sites, the peroxidase (POD)‐ and oxidase (OXD)‐like performance is significantly enhanced. The activity enhancement results from the presence of abundant edges, which provide new anchoring sites to mononuclear Fe. Experimental results combined with density functional theory (DFT) calculations reveal that FeN4 moieties in the edge sites display high electron density of Fe atoms and open N atoms. Finally, it is demonstrated that FeNC‐edge nanozyme effectively inhibits tumor growth both in vitro and in vivo, suggesting that edge‐tailoring is an efficient strategy for developing artificial enzymes as novel catalytic therapeutics.

Funder

National Research Foundation of Korea

Seoul National University

Korea Institute of Science and Technology Information

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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