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一种具有声响应抗菌疗法(SRAT)的纳米催化膜,用于快速杀菌和促进慢性伤口愈合。

A nanocatalytic membrane with sono-responsive antibacterial therapy (SRAT) for rapid sterilization and enhanced chronic wound healing.

作者信息

He Shuai, Xie Lu, Zhang Daiquan, Han Shihao, Shi Hongxing, Yu Sheng, Deng Yi, Wang Song, Wu Chao

机构信息

State Key Laboratory of Oral Diseases & National Center for Stomatology & National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, School of Chemical Engineering, Sichuan University, 610041 Chengdu, Sichuan, China.

Department of Traditional Chinese Medicine, West China Second Hospital, Sichuan University, 610041 Chengdu, Sichuan, China.

出版信息

Nanoscale. 2025 Apr 10;17(15):9552-9561. doi: 10.1039/d5nr00211g.

Abstract

Pathogenic bacteria in infected microenvironments can severely disrupt the normal progression of wound healing. Sono-responsive nanomaterials have emerged as a promising alternative to conventional antibiotics for combating bacterial infections. Despite the advantageous sono-excited antibacterial properties of n-type barium titanate (BaTiO, BTO), developing bioheterojunctions (bioHJs) with compatible sono-physical characteristics remains a key strategy for achieving superior sono-antibacterial efficiency. Here, we constructed a novel PN-bioHJ by integrating two-dimensional p-type black phosphorus (BP) with three-dimensional n-type cubic BTO and modifying it onto a poly(lactic--glycolic acid) (PLGA) spinning membrane to enhance antibacterial performance under ultrasonic (US) stimulation. The successful construction of PN-bioHJs can significantly enhance the yield of ROS production for sono-responsive antibacterial therapy (SRAT). Additionally, the biodegradable PLGA membrane provides a biocompatible and scalable platform for the acoustic activation of the PN-bioHJs while facilitating localized antibacterial therapy. The designed sono-responsive nanocatalytic membrane demonstrates excellent bactericidal performance with antibacterial rates exceeding 99% under US stimulation. tests further revealed that the proposed membrane shows excellent biocompatibility and the ability to mitigate pathogenic virulence factors, potentially aiding in the regeneration of infected tissues. This work introduces a promising strategy for leveraging acoustically activated membranes in biomedical applications, paving the way for advanced solutions to combat antibiotic resistance.

摘要

感染微环境中的病原菌会严重干扰伤口愈合的正常进程。声响应纳米材料已成为对抗细菌感染的传统抗生素的一种有前景的替代品。尽管n型钛酸钡(BaTiO,BTO)具有有利的声激发抗菌特性,但开发具有兼容声物理特性的生物异质结(bioHJs)仍然是实现卓越声抗菌效率的关键策略。在此,我们通过将二维p型黑磷(BP)与三维n型立方BTO整合,并将其修饰到聚乳酸-乙醇酸共聚物(PLGA)纺丝膜上,构建了一种新型PN-bioHJ,以增强超声(US)刺激下的抗菌性能。PN-bioHJs的成功构建可显著提高声响应抗菌疗法(SRAT)中活性氧的产生量。此外,可生物降解的PLGA膜为PN-bioHJs的声激活提供了生物相容性和可扩展的平台,同时便于局部抗菌治疗。所设计的声响应纳米催化膜在US刺激下表现出优异的杀菌性能,抗菌率超过99%。 测试进一步表明,所提出的膜具有优异的生物相容性和减轻致病毒力因子的能力,可能有助于感染组织的再生。这项工作引入了一种在生物医学应用中利用声激活膜的有前景的策略,为对抗抗生素耐药性的先进解决方案铺平了道路。

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