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Baiting bacteria with amino acidic and peptidic corona coated defect-engineered antimicrobial nanoclusters for optimized wound healing

Authors :
Wang, Maonan
Zhu, Houjuan
Xue, Yuling
Duan, Yanxia
Tian, Hua
Liu, Qi
Zhang, Yuzhu
Li, Zibiao
Loh, Xian Jun
Ye, Enyi
Yin, Gang
Wang, Xuemei
Ding, Xianguang
Leong, David Tai
Source :
Bioactive Materials; December 2024, Vol. 42 Issue: 1 p628-643, 16p
Publication Year :
2024

Abstract

Keeping steps ahead of the bacteria in the race for more efficacious antibacterial strategies is increasingly difficult with the advent of bacterial resistance genes. Herein, we engineered copper sulfide nanoclusters (CuSxNCs) with variable sulfur defects for enhanced dual-treatment of bacterial infections by manipulating photothermal effects and Fenton-like activity. Next, by encasing CuSxNCs with a complex mixture of amino acids and short peptides derived from Luria-Bertani bacterial culture media as a protein corona, we managed to coax E. Coli to take up these CuSxNCs. As a whole, Amino-Pep-CuSxNCs was perceived as a food source and actively consumed by bacteria, enhancing their effective uptake by at least 1.5-fold greater than full length BSA protein BSA-corona CuSxNCs. Through strategically using defect-engineering, we successfully fine-tune photothermal effect and Fenton-like capacity of CuSxNCs. Increased sulfur defects lead to reduced but sufficient heat generation under solar-light irradiation and increased production of toxic hydroxyl radicals. By fine-tuning sulfur defects during synthesis, we achieve CuSxNCs with an optimal synergistic effect, significantly enhancing their bactericidal properties. These ultra-small and biodegradable CuSxNCs can rapidly break down after treatment for clearance. Thus, Amino-Pep-CuSxNCs demonstrate effective eradication of bacteria both in vitroand in vivobecause of their relatively high uptake, optimal balanced photothermal and chemodynamic outcomes. Our study offers a straightforward and efficient method to enhance bacterial uptake of next generation of antibacterial agents.

Details

Language :
English
ISSN :
2452199X
Volume :
42
Issue :
1
Database :
Supplemental Index
Journal :
Bioactive Materials
Publication Type :
Periodical
Accession number :
ejs67348059
Full Text :
https://doi.org/10.1016/j.bioactmat.2024.09.010