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多功能光响应纳米颗粒介导的协同化学和光动力抗菌治疗增强伤口愈合。

Synergistic Chemical and Photodynamic Antimicrobial Therapy for Enhanced Wound Healing Mediated by Multifunctional Light-Responsive Nanoparticles.

机构信息

National Engineering Research Center for Biomaterials , Sichuan University , Chengdu , Sichuan 610064 , People's Republic of China.

出版信息

Biomacromolecules. 2019 Dec 9;20(12):4581-4592. doi: 10.1021/acs.biomac.9b01401. Epub 2019 Nov 15.

Abstract

Recently, rapid acquisition of antibiotic resistance, increased prevalence of antibiotic-resistant bacterial infections, and slow healing of infected wound have led to vast difficulties in developing innovative antimicrobial agents to obliterate pathogenic bacteria and simultaneously accelerate wound healing. To effectively solve this problem, we designed light-responsive multifunctional nanoparticles with conjugation of quaternary ammonium chitosan and photosensitizer chlorin e6 (Ce6) to merge chemical and photodynamic therapy to efficient antibacteria. The Mg/(-)-epigallocatechin-3-gallate (EGCG) complex rapidly responded to light irradiation under 660 nm with release of magnesium ions, which effectively accelerated wound healing without toxicity to mammalian cells. Notably, positively charged nanoparticles could efficiently adhere to the bacterial surface, and reactive oxygen species (ROS) produced under laser irradiation destroyed the membrane structure of the bacteria, which is irreversible, ultimately leading to bacteria death. Thus, multifunctional nanoparticles with a combination of chemical and photodynamic antimicrobial therapy would offer guidance to rational predicted and designed new effective antimicrobial nanomaterials. Most importantly, it may represent a promising class of antimicrobial strategy for potential clinical translation.

摘要

最近,抗生素耐药性的快速获得、抗生素耐药菌感染的流行率增加以及感染伤口的愈合缓慢,使得开发创新的抗菌药物来消灭病原菌并同时加速伤口愈合面临着巨大的困难。为了有效地解决这个问题,我们设计了具有季铵化壳聚糖和光敏剂氯己定(Ce6)缀合的光响应多功能纳米粒子,将化学疗法和光动力疗法相结合,以实现高效抗菌。Mg/(-)-表没食子儿茶素没食子酸酯(EGCG)复合物在 660nm 光照射下迅速响应,释放镁离子,有效促进伤口愈合,对哺乳动物细胞没有毒性。值得注意的是,带正电荷的纳米粒子可以有效地附着在细菌表面,激光照射下产生的活性氧(ROS)破坏细菌的膜结构,这是不可逆的,最终导致细菌死亡。因此,将化学和光动力抗菌疗法相结合的多功能纳米粒子为合理预测和设计新的有效抗菌纳米材料提供了指导。最重要的是,它可能代表了一种有前途的抗菌策略,有望在临床上得到转化。

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