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The Synergistic Effect of Visible Light and Gentamycin on Pseudomona aeruginosa Microorganisms
Published on: July 2, 2013
Biomimetic Coacervate Microdroplets Capable of Generating Nitric Oxide and Photonic Hyperpyrexia for Bacterial
Xiaoli Ma1, Li Wang1, Fan Yang2
1Hunan Research Center of the Basic Discipline Developmental Biology, College of Life Science, Hunan Normal University, Changsha410081, P. R. China.
Abstract:
Wound bacterial infections pose a serious threat to human health. Nitric oxide (NO) is a broad-spectrum antimicrobial agent and widely participates in immune response, tissue repair, and inflammation regulation. The in situ controllable generation of NO is of crucial importance for the development of NO-based antibacterial agents. Herein, we have constructed a biomimetic, primitive cell-inspired antibacterial coacervate microdroplet for multimode synergistic antibacterial therapy and accelerating wound healing. In this system, the dual-functional photosensitizer indocyanine green (ICG) and the NO prodrug l-arginine (l-Arg) were co-encapsulated into a phospholipid-coated coacervate by liquid-liquid phase separation, yielding a near-infrared (NIR)-activatable NO-releasing platform (IACoac@M). Upon NIR laser irradiation, the loaded ICG not only directly generated the photonic hyperpyrexia for bacterial killing but also performed a photodynamic process for producing singlet oxygen (1O2) that further oxidated l-Arg into NO. The NO production suppresses the expression of the bacterial molecular chaperone DnaK, a heat shock protein, promoting the photothermal therapy. By the combination of multiple bactericidal modalities, IACoac@M showed high antibacterial activities against Gram-positive S. aureus and Gram-negative E. coli. Further in vivo animal assays revealed that IACoac@M could effectively eliminate bacteria cells in wound tissue; inhibit inflammatory factors; and promote angiogenesis, collagen deposition, and epidermal regeneration, thereby accelerating the wound healing process. This study provided a rationally designed multifunctional coacervate capable of generating NO and photonic hyperpyrexia for photothermal/photodynamic/gas trimode synergistic antibacterial therapy, offering a potential solution for the treatment of wound bacterial infections.
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