Back to Search Start Over

ROS Balance Autoregulating Core–Shell CeO2@ZIF-8/Au Nanoplatform for Wound Repair.

Authors :
Zhou, Xi
Zhou, Quan
He, Zhaozhi
Xiao, Yi
Liu, Yan
Huang, Zhuohang
Sun, Yaoji
Wang, Jiawei
Zhao, Zhengdong
Liu, Xiaozhou
Zhou, Bin
Ren, Lei
Sun, Yu
Chen, Zhiwei
Zhang, Xingcai
Source :
Nano-Micro Letters. 3/21/2024, Vol. 16 Issue 1, p1-21. 21p.
Publication Year :
2024

Abstract

Highlights: The innovation of this work mainly lies in the auto-regulation of reactive oxygen species (ROS) balance effective by combination of ROS antibacterial and ROS scavenging anti-inflammatory functions with a core–shell nanoplatform (CeO2@ZIF-8/Au), which can not only achieve high antibacterial efficiency, but also promote wound healing, and provide a new idea for the nano-catalytic system in the field of wound healing of bacterial infection. Reactive oxygen species (ROS) plays important roles in living organisms. While ROS is a double-edged sword, which can eliminate drug-resistant bacteria, but excessive levels can cause oxidative damage to cells. A core–shell nanozyme, CeO2@ZIF-8/Au, has been crafted, spontaneously activating both ROS generating and scavenging functions, achieving the multi-faceted functions of eliminating bacteria, reducing inflammation, and promoting wound healing. The Au Nanoparticles (NPs) on the shell exhibit high-efficiency peroxidase-like activity, producing ROS to kill bacteria. Meanwhile, the encapsulation of CeO2 core within ZIF-8 provides a seal for temporarily limiting the superoxide dismutase and catalase-like activities of CeO2 nanoparticles. Subsequently, as the ZIF-8 structure decomposes in the acidic microenvironment, the CeO2 core is gradually released, exerting its ROS scavenging activity to eliminate excess ROS produced by the Au NPs. These two functions automatically and continuously regulate the balance of ROS levels, ultimately achieving the function of killing bacteria, reducing inflammation, and promoting wound healing. Such innovative ROS spontaneous regulators hold immense potential for revolutionizing the field of antibacterial agents and therapies. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
23116706
Volume :
16
Issue :
1
Database :
Academic Search Index
Journal :
Nano-Micro Letters
Publication Type :
Academic Journal
Accession number :
176583451
Full Text :
https://doi.org/10.1007/s40820-024-01353-0