Copper‐Cysteine Nanostructures for Synergetic Photothermal Therapy and Chemodynamic Therapy of Bacterial Skin Abscesses

Author:

Bagheri Hadi1,Bochani Shayesteh1,Seyedhamzeh Mohammad1,Shokri Zahra2,Kalantari‐Hesari Ali3,Turner Raymond J.4,Kharaziha Mahshid5,Esmaeilzadeh Kimia6,Golami Mehdi7,Zeighami Habib8,Maleki Aziz1ORCID

Affiliation:

1. Zanjan Pharmaceutical Nanotechnology Research Center (ZPNRC) and Department of Pharmaceutical Nanotechnology School of pharmacy Zanjan University of Medical Sciences Zanjan 45139‐56184 Iran

2. Student Research Committee School of Medicine Zanjan University of Medical Sciences Zanjan 45139‐56184 Iran

3. Department of Pathobiology Faculty of Veterinary Medicine Bu‐Ali Sina University Hamadan 6517838695 Iran

4. Department of Biological Sciences University of Calgary 2500 University Dr. NW Calgary Alberta T2N 1N4 Canada

5. Department of Materials Engineering Isfahan University of Technology Isfahan 84156‐83111 Iran

6. Department of Medical Nanotechnology School of Medicine Zanjan University of Medical Sciences Zanjan 45139‐56184 Iran

7. Department of Toxicology & Pharmacology Faculty of Pharmacy Toxicology and Poisoning Research Centre Tehran University of Medical Sciences Tehran 1416753955 Iran

8. Department of Microbiology School of Medicine Zanjan University of Medical Sciences Zanjan 45139‐56184 Iran

Abstract

AbstractSkin lesions, including skin bacterial abscesses, have become one of the most important health challenges and usually need systemic high‐dose antibiotics. Therefore, it is of particular importance to develop novel approaches for treating this ever‐growing challenge to human health. To address this challenge, herein a copper nanostructure is developed giving combined photothermal and chemodynamic therapies for focal infection treatment. The Cu‐based nanostructures with intrinsic catalytic properties are prepared by D‐L or L cysteine (Cys) as ligand and copper ions. It is shown that the multifunctional copper‐Cys (Cu‐Cys) nanostructures can produce reactive oxygen species (ROS) and they exhibit near infrared (NIR)‐enhanced catalytic activities to improve ROS production for highly efficient eradication of bacteria. Moreover, the results proved O2 evolution property of the Cu‐Cys nanoparticles (NPs). The nanostructures show shape‐dependent antibacterial activity where DL‐Cu‐Cys NPs show higher bactericidal performance than L‐Cu‐Cys NPs. In vitro results demonstrate that 2.5 and 1.25 µg mL−1 of DL‐Cu‐Cys NPs is enough to achieve rapid killing of Escherichia coli (E. coli) or Staphylococcus aureus (S. aureus) respectively under 808 nm light irradiation in 10 min. This work introduces a unique photoactive nanoagent to efficiently treat subcutaneous abscess by combining NIR light‐triggered photothermal effect and catalytic generation of ROS without using any antibiotic.

Funder

Zanjan University of Medical Sciences

Publisher

Wiley

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