Near-Infrared Light-Driven Photocatalytic Antibacterial Activity of CaCO 3 /C/PDA Nanocomposites against Gram-Negative Bacteria

抗菌活性 抗菌剂 细菌 化学 抗菌剂 灭菌(经济) 细菌生长 光催化 光热治疗 微生物学 纳米复合材料 组合化学 致病菌 纳米技术 消毒剂 纳米颗粒 抗感染药
作者
Zhuoli Chen,Lingying Chen,Xiaozhi Zheng,Junlin Li,J. Ding,Chen Cai,Haiming Yu
出处
期刊:ACS applied bio materials [American Chemical Society]
卷期号:8 (12): 11134-11144
标识
DOI:10.1021/acsabm.5c01840
摘要

Antibacterial resistance has become a growing global health challenge, with multidrug-resistant pathogens posing significant threats to public health. Traditional antibacterial agents often encounter problems such as high costs, low efficiency, poor antibacterial efficacy, and restricted biocompatibility. Thus, there is an urgent need to develop materials with enhanced antibacterial properties. In this study, CaCO3/C/PDA antibacterial composite was designed as a high-efficacy antibacterial agent against Gram-negative bacteria. Under near-infrared light irradiation (808 nm, 0.3 W/cm2, 4 min), the CaCO3/C/PDA0.2 exhibited satisfactory antibacterial activity against Gram-negative bacteria, including Escherichia coli, Pseudomonas aeruginosa, and Klebsiella pneumonia, with sterilization rates of 91.7%, 98%, and 100%, respectively. The antibacterial mechanism could be attributed to the synergistic effects of photothermal and photodynamic therapy, where high temperatures can denature bacterial proteins and reactive oxygen species (ROS) may disrupt bacterial metabolism, ultimately leading to bacterial death. All of the experimental results confirmed that CaCO3/C/PDA is a promising antimicrobial agent for Gram-negative bacterial infections. In addition, the in vitro toxicity tests also confirmed that CaCO3/C/PDA possessed excellent biocompatibility. Overall, this work offers an approach and strategy for the development of next-generation antimicrobial materials with broad biomedical potential.
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