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A Manganese-Based Metal–Organic Framework as a Cold-Adapted Nanozyme

  • Yao Chen
  • , Qing Tian
  • , Haoyu Wang
  • , Ruonan Ma
  • , Ruiting Han
  • , Yu Wang
  • , Huibin Ge
  • , Yujing Ren
  • , Rong Yang
  • , Huimin Yang
  • , Yinjuan Chen
  • , Xuezhi Duan
  • , Lianbing Zhang
  • , Jie Gao
  • , Lizeng Gao
  • , Xiyun Yan
  • , Yong Qin
  • School of Life Sciences
  • Northwestern Polytechnical University Xian
  • CAS - Institute of Biophysics
  • State Key Laboratory of Coal Conversion
  • CAS - Institute of Coal Chemistry
  • Advanced Catalysis and Green Manufacturing Collaborative Innovation Center
  • Changzhou University
  • China University of Petroleum (East China)
  • State Key Laboratory of Chemical Engineering
  • East China University of Science and Technology

科研成果: 期刊稿件文章同行评审

87 引用 (Scopus)

摘要

The development of cold-adapted enzymes with high efficiency and good stability is an advanced strategy to overcome the limitations of catalytic medicine in low and cryogenic temperatures. In this work, inspired by natural enzymes, a novel cold-adapted nanozyme based on a manganese-based nanosized metal–organic framework (nMnBTC) is designed and synthesized. The nMnBTC as an oxidase mimetic not only exhibits excellent activity at 0 °C, but also presents almost no observable activity loss as the temperature is increased to 45 °C. This breaks the traditional recognition that enzymes show maximum activity only under specific psychrophilic or thermophilic condition. The superior performance of nMnBTC as a cold-adapted nanozyme can be attributed to its high-catalytic efficiency at low temperature, good substrate affinity, and flexible conformation. Based on the robust performance of nMnBTC, a low-temperature antiviral strategy is developed to inactivate influenza virus H1N1 even at −20 °C. These results not only provide an important guide for the rational design of highly efficient artificial cold-adapted enzymes, but also pave a novel way for biomedical application in cryogenic fields.

源语言英语
期刊论文编号2206421
期刊Advanced Materials
36
10
DOI
出版状态已出版 - 7 3月 2024

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