Bibo Ren, Jun Li, Bo Li, Kaijun Li, Shiyu Wang, Qiaoqiao Han, Zelin Ou* and Haibo Wang*,
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引用次数: 0
摘要
糖尿病感染伤口因其难治性和潜在的严重并发症而成为一项重大挑战。传统的治疗策略主要依赖抗生素,这不仅会导致耐药性,还会带来全身毒性风险。光动力疗法(PDT)是一种很有前景的方法,但对革兰氏阴性菌的疗效有限,而且材料毒性大。例如,季铵盐和残留光敏剂会在抗菌过程后产生持续的光毒性,加剧糖尿病伤口的炎症反应,阻碍组织修复。为了解决这些局限性,我们开发了一种创新的齐聚物 pH 响应聚氨酯纳米粒子(PU NP)平台,该平台整合了聚集诱导发射(AIE)光敏剂和肉桂醛,可用于靶向高效抗菌治疗。肉桂醛在细菌感染微环境中释放,在光照条件下与光敏剂协同增强 ROS 生成。这种多功能纳米平台可显著提高抗菌效率,同时最大程度地降低脱靶毒性、潜在毒性和炎症反应风险。此外,PU NP 系统还能调节小鼠伤口组织中 T 细胞的活化和迁移,从而优化 T 细胞的免疫微环境。这种创新方法有望精确治疗糖尿病感染伤口,并有可能克服目前光动力疗法的局限性,加速其临床转化。
Zwitterionic pH-Responsive Polyurethane Nanoparticles with Cinnamaldehyde and Aggregation-Induced Emission Photosensitizers for Photodynamic Therapy of Diabetic Infected Wounds
Diabetic infected wounds pose a significant challenge due to their refractoriness and potential for serious complications. Conventional treatment strategies primarily rely on antibiotics, which not only contribute to drug resistance but also pose risks of systemic toxicity. Photodynamic therapy (PDT) has emerged as a promising method but suffers from limited effectiveness against Gram-negative bacteria or high material toxicity. For example, quaternary ammonium salts and residual photosensitizers can produce persistent phototoxicity after the antibacterial process, exacerbating the inflammatory response in diabetic wounds and hindering tissue repair. To address these limitations, we developed an innovative zwitterionic pH-responsive polyurethane nanoparticle (PU NP) platform that integrates aggregation-induced emission (AIE) photosensitizers and cinnamaldehyde for targeted and efficient antibacterial treatment. Cinnamaldehyde is released in the bacterial infection microenvironment, synergistically enhancing ROS production with the photosensitizers under light conditions. The multifunctional nanoplatform significantly improves antibacterial efficiency while minimizing off-target toxicity, potential toxicity, and inflammatory response risks. Furthermore, the PU NP system demonstrates the ability to regulate T cell activation and migration in mouse wound tissues, thus optimizing the T cell immune microenvironment. This innovative approach holds promise for the precise treatment of diabetic infected wounds and has the potential to overcome the limitations of current photodynamic therapy, accelerating its clinical translation.
期刊介绍:
ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.