Bioinspired Sonodynamic Nano Spray Accelerates Infected Wound Healing via Targeting and Disturbing Bacterial Metabolism

材料科学 声动力疗法 纳米技术 金黄色葡萄球菌 细菌 伤口愈合 微生物学 巨噬细胞 慢性伤口 生物相容性材料 体内 活性氧 体外 细胞生物学 生物医学工程 医学 生物 生物技术 免疫学 生物化学 遗传学
作者
Xin Qian,Teliang Lu,Chongquan Huang,Dengwen Zheng,Gencheng Gong,Xiao Chu,Xiaolan Wang,Huahao Lai,Limin Ma,Le Jiang,Xiaodan Sun,Xiongfa Ji,Mei Li,Yu Zhang
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:34 (28) 被引量:2
标识
DOI:10.1002/adfm.202315576
摘要

Abstract Bacterial infections pose a major concern for the medical community, especially regarding wound healing. Traditional passive antibiotic therapies can be cytotoxic and lead to bacterial resistance, posing a continuing challenge to treat. Based on precision therapy, a novel targeted‐delivery nanosystem is developed to efficiently eliminate bacteria and promote bacteria‐infected wound healing. Macrophage membranes pre‐activated by Staphylococcus aureus (MM Sa ) are prepared. In doing so, Toll‐like receptors (TLRs), a typical pathogen‐associated molecular pattern (PAMP), are significantly higher than normal macrophage membranes (MM 0 ). Subsequently, MM Sa are coated onto ultrasound‐triggered piezocatalytic nano‐barium titanate (BaTiO 3 , BTO) surfaces, and these two components are assembled to form a novel targeting delivery nanosystem, namely BTO@MM Sa . The in vitro and in vivo results demonstrate that the biocompatible BTO@MM Sa nanosystem can target infected areas and rapidly generate reactive oxygen species (ROS) to kill bacteria under ultrasound (US) irradiation, as well as accelerate wound healing. Furthermore, prokaryotic RNA‐seq transcriptomics reveals that changes in bacterial membrane function and substance, and energy metabolism are responsible for the targeted antibacterial ability of BTO@MM Sa with US. Compared to widely reported unselective antibacterial agents, this novel targeted delivery nanosystem has potential for precise bacterial infection treatment by using macrophage membrane functions.
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