Sun Jiyu, Deng Yi, Han Qiuyang, Ma Daichuan, Chan Yau Kei, He Shuai, Zhou Xiong, Wang Hao, Fu Xinliang, Gan Xueqi
School of Chemical Engineering, West China School of Stomatology, Sichuan University, 610065, Chengdu, China.
State Key Laboratory of Oral Diseases, National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu, 610041, China.
Nanoscale. 2023 Jan 5;15(2):609-624. doi: 10.1039/d2nr03267h.
The treatment of festering pathogenic bacteria-induced skin wounds with increased inflammation is an ongoing challenge. The traditional antibacterial photothermal therapy always results in localized hyperthermia (over 50 °C), which inevitably delays tissue recovery. To address this serious issue, we devise a novel photonic hydrogel by integrating urchin-like BiS nano-heterojunctions (nano-HJs) into double-network hydrogels for infected skin regeneration. The synergy of NIR-triggered heat and ROS enables the hydrogels to achieve a rapid germicidal efficacy against bacteria within 15 min at mild temperature (below 50 °C). cell analysis results revealed that the photonic hydrogels exhibit superior cytocompatibility even after NIR illumination. More importantly, an study demonstrated that the photonic hydrogel dressings have a robust ability of accelerating contagious full-thickness wound regeneration through debriding abscesses, eliminating pathogens, improving collagen deposition, promoting angiogenesis, and adjusting the inflammation state. This photonic hydrogel system provides a general management strategy for the remedy of infectious wounds, where the incorporation of nano-HJs endows the hydrogels with the photodisinfection ability; in addition, the multifunctional hydrogels alleviate the damage from overwhelming heat towards surrounding tissues during phototherapy and steer the inflammation during the process of tissue regeneration. Accordingly, this work highlights the promising application of the photonic hydrogels in conquering refractory pathogen-invaded infection.
治疗由化脓性病原菌引起的伴有炎症加剧的皮肤伤口是一项持续存在的挑战。传统的抗菌光热疗法总是会导致局部体温过高(超过50°C),这不可避免地会延迟组织恢复。为了解决这一严重问题,我们通过将海胆状BiS纳米异质结(nano-HJs)整合到双网络水凝胶中,设计出一种新型光子水凝胶,用于感染皮肤的再生。近红外触发的热和活性氧的协同作用使水凝胶能够在温和温度(低于50°C)下15分钟内对细菌实现快速杀菌效果。细胞分析结果表明,即使在近红外照射后,光子水凝胶仍表现出优异的细胞相容性。更重要的是,一项研究表明,光子水凝胶敷料具有强大的能力,可通过清创脓肿、消除病原体、改善胶原蛋白沉积、促进血管生成和调节炎症状态来加速传染性全层伤口的再生。这种光子水凝胶系统为感染性伤口的治疗提供了一种通用的管理策略,其中纳米异质结的掺入赋予水凝胶光消毒能力;此外,多功能水凝胶减轻了光疗期间过热对周围组织的损伤,并在组织再生过程中控制炎症。因此,这项工作突出了光子水凝胶在攻克难治性病原体入侵感染方面的应用前景。