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Diatomic iron nanozyme with lipoxidase-like activity for efficient inactivation of enveloped virus.

Authors :
Li, Beibei
Ma, Ruonan
Chen, Lei
Zhou, Caiyu
Zhang, Yu-Xiao
Wang, Xiaonan
Huang, Helai
Hu, Qikun
Zheng, Xiaobo
Yang, Jiarui
Shao, Mengjuan
Hao, Pengfei
Wu, Yanfen
Che, Yizhen
Li, Chang
Qin, Tao
Gao, Lizeng
Niu, Zhiqiang
Li, Yadong
Source :
Nature Communications; 11/11/2023, Vol. 14 Issue 1, p1-11, 11p
Publication Year :
2023

Abstract

Enveloped viruses encased within a lipid bilayer membrane are highly contagious and can cause many infectious diseases like influenza and COVID-19, thus calling for effective prevention and inactivation strategies. Here, we develop a diatomic iron nanozyme with lipoxidase-like (LOX-like) activity for the inactivation of enveloped virus. The diatomic iron sites can destruct the viral envelope via lipid peroxidation, thus displaying non-specific virucidal property. In contrast, natural LOX exhibits low antiviral performance, manifesting the advantage of nanozyme over the natural enzyme. Theoretical studies suggest that the Fe-O-Fe motif can match well the energy levels of Fe<subscript>2</subscript> minority β-spin d orbitals and pentadiene moiety π* orbitals, and thus significantly lower the activation barrier of cis,cis-1,4-pentadiene moiety in the vesicle membrane. We showcase that the diatomic iron nanozyme can be incorporated into air purifier to disinfect airborne flu virus. The present strategy promises a future application in comprehensive biosecurity control. Enveloped viruses encased within a lipid bilayer membrane are highly contagious and cause diseases like influenza and COVID-19, so strategies for their prevention and inactivation are needed. Here, the authors develop a diatomic iron nanozyme with lipoxidase-like activity for the inactivation of enveloped viruses, where the diatomic iron sites destroy the viral envelope via lipid peroxidation. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20411723
Volume :
14
Issue :
1
Database :
Complementary Index
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
173557586
Full Text :
https://doi.org/10.1038/s41467-023-43176-4