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In-biofilm generation of nitric oxide using a magnetically-targetable cascade-reaction container for eradication of infectious biofilms

Authors :
Yang, Guang
Wang, Da-Yuan
Liu, Yong
Huang, Fan
Tian, Shuang
Ren, Yijin
Liu, Jianfeng
An, Yingli
van der Mei, Henny C.
Busscher, Henk J.
Shi, Linqi
Source :
Bioactive Materials; 20220101, Issue: Preprints
Publication Year :
2022

Abstract

Cascade-reaction chemistry can generate reactive-oxygen-species that can be used for the eradication of infectious biofilms. However, suitable and sufficient oxygen sources are not always available near an infection site, while the reactive-oxygen-species generated are short-lived. Therefore, we developed a magnetic cascade-reaction container composed of mesoporous Fe3O4@SiO2nanoparticles containing glucose-oxidase and l-arginine for generation of reactive-oxygen-species. Glucose-oxidase was conjugated with APTES facilitating coupling to Fe3O4@SiO2nanoparticles and generation of H2O2from glucose. l-arginine was loaded into the nanoparticles to generate NO from the H2O2generated. Using an externally-applied magnetic field, cascade-reaction containers could be homogeneously distributed across the depth of an infectious biofilm. Cascade-reaction containers with coupled glucose-oxidase were effective in killing planktonic, Gram-positive and Gram-negative bacteria. Additional efficacy of the l-arginine based second cascade-reaction was only observed when H2O2as well as NO were generated in-biofilm. In vivoaccumulation of cascade-reaction containers inside abdominal Staphylococcus aureusbiofilms upon magnetic targeting was observed real-time in living mice through an implanted, intra-vital window. Moreover, vancomycin-resistant, abdominal S. aureusbiofilms could be eradicated consuming solely endogenous glucose, without any glucose addition. Herewith, a new, non-antibiotic-based infection-control strategy has been provided, constituting a welcome addendum to the shrinking clinical armamentarium to control antibiotic-resistant bacterial infections.

Details

Language :
English
ISSN :
2452199X
Issue :
Preprints
Database :
Supplemental Index
Journal :
Bioactive Materials
Publication Type :
Periodical
Accession number :
ejs58806961
Full Text :
https://doi.org/10.1016/j.bioactmat.2022.01.044