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Electroactive Polymer Nanoparticles Exhibiting Photothermal Properties
Published on: January 8, 2016
Multifunctional Metal Polyphenol Nanoparticles Based on Photothermal Therapy for Bacterial Eradication and Wound
Haitao Yuan1,2, Mengyun Hou2,3, Min Zou3
1Center for Drug Research and Development, Guangdong Provincial Key Laboratory for Research and Evaluation of Pharmaceutical Preparations, Guangdong Pharmaceutical University, Guangzhou 510006, P.R. China.
Abstract:
Balancing short-term antibacterial needs with long-term anti-inflammatory effects remains a major challenge in wound healing. Multifunctional bioactive materials capable of both efficient antibacterial action and inflammation modulation represent a promising solution. However, the majority of traditional antibacterial biomaterials possess only a single antibacterial effect, and their synthesis and preparation are intricate, which might restrict their clinical transformation. Chlorogenic acid is a natural compound endowed with anti-inflammatory properties. However, it is beset by certain inherent drawbacks, including poor water solubility and limited bioavailability. To overcome these difficulties, we have fabricated multifunctional nanoparticles (chlorogenic acid-iron nanoparticles, CA-Fe NPs) through the co-assembly of chlorogenic acid and iron ions in a straightforward manner. We found that CA-Fe NPs exhibit excellent photothermal conversion performance in vitro. Upon near-infrared (NIR) irradiation, they exhibit potent broad-spectrum antimicrobial activity against Staphylococcus aureus, Escherichia coli, Candida albicans, Klebsiella pneumoniae, and Pseudomonas aeruginosa. The CA-Fe NPs markedly reduced H2O2-induced reactive oxygen species levels and apoptosis in epithelial cells and suppressed lipopolysaccharide-induced M1 macrophage polarization in RAW 264.7 cells. Transmission electron microscopy results revealed enhanced bacterial membrane disruption by CA-Fe NPs under NIR irradiation, causing pronounced protein leakage. Transcriptomic analysis indicates that CA-Fe NPs combined with NIR disrupt the tricarboxylic acid cycle, cell-wall organization, and other metabolic processes. In vivo, within a methicillin-resistant Staphylococcus aureus-infected skin wound model, CA-Fe NPs maintained photothermal efficacy, effectively reduced serum levels of interleukin-1 beta, interleukin-6, and tumor necrosis factor alpha, and accelerated wound healing. These findings suggest that CA-Fe NPs are multifunctional materials with broad-spectrum bactericidal ability, antioxidant, anti-inflammatory, and wound-healing-promotion properties. These nanoparticles possess promising prospects for biomedical applications.

