Jiang Ji, Tian Yuan, Wu Xiaoyang, Zeng Mingze, Wu Chengheng, Wei Dan, Luo Hongrong, Sun Jing, Ding Jie, Fan Hongsong
National Engineering Research Center for Biomaterials, College of Biomedical Engineering, Sichuan University, Chengdu, 610065, P. R. China.
Institute of Regulatory Science for Medical Devices, Sichuan University, Chengdu 610065, P. R. China.
J Mater Chem B. 2025 Feb 19;13(8):2855-2870. doi: 10.1039/d4tb02555e.
Wound healing is a complex and dynamic biological process that requires meticulous management to ensure optimal outcomes. Traditional wound dressings, such as gauze and bandages, although commonly used, often fall short in their frequent need for replacement, lack of real-time monitoring and absence of anti-inflammatory and antibacterial properties, which can lead to increased risk of infection and delayed healing. Here, we address these limitations by introducing an innovative hydrogel dressing, named PHDNN6, to combine wireless Bluetooth temperature monitoring and light-triggered nitric oxide (NO) release to enhance wound healing and management. The PHDNN6 hydrogel is based on a poly(-isopropylacrylamide) (PNIPAM) matrix, integrated with methacrylated and dopamine-grafted hyaluronic acid (HA-MA-DA), which allows the dressing to be highly responsive to changes in wound temperature, enabling continuous and real-time monitoring of the wound microenvironment wirelessly. Besides, PHDNN6 is embedded with photothermal polydopamine nanoparticles (PDA NPs) that are loaded with a NO donor, ,'-di--butyl-,'-dinitroso-1,4-phenylenediamine (BNN6). When exposed to near-infrared (NIR) laser irradiation, these PDA@BNN6 nanoparticles release NO to provide potent antibacterial and anti-inflammatory effects. The integration of continuous wireless temperature monitoring with NO release within a single hydrogel dressing represents a significant advancement in clinical wound care. This dual-functional platform not only provides real-time diagnostic capabilities but also offers therapeutic interventions to manage wound infections and promote tissue regeneration. Our research highlights the potential of PHDNN6 to revolutionize wound management by offering a comprehensive solution that addresses both the diagnostic and therapeutic needs in wound healing.
伤口愈合是一个复杂且动态的生物学过程,需要精心管理以确保最佳效果。传统伤口敷料,如纱布和绷带,虽然常用,但往往因频繁更换需求、缺乏实时监测以及缺乏抗炎和抗菌特性而存在不足,这可能导致感染风险增加和愈合延迟。在此,我们通过引入一种名为PHDNN6的创新水凝胶敷料来解决这些局限性,该敷料结合了无线蓝牙温度监测和光触发一氧化氮(NO)释放,以增强伤口愈合和管理。PHDNN6水凝胶基于聚(N-异丙基丙烯酰胺)(PNIPAM)基质,与甲基丙烯酸化和多巴胺接枝的透明质酸(HA-MA-DA)集成,这使得敷料对伤口温度变化具有高度响应性,能够无线连续实时监测伤口微环境。此外,PHDNN6嵌入了负载NO供体N,N'-二丁基-N,N'-二亚硝基-1,4-苯二胺(BNN6)的光热聚多巴胺纳米颗粒(PDA NPs)。当暴露于近红外(NIR)激光照射时,这些PDA@BNN6纳米颗粒释放NO以提供强大的抗菌和抗炎作用。在单一水凝胶敷料中集成连续无线温度监测与NO释放代表了临床伤口护理的重大进步。这个双功能平台不仅提供实时诊断能力,还提供治疗干预措施来管理伤口感染并促进组织再生。我们的研究强调了PHDNN6通过提供一种全面解决方案来彻底改变伤口管理的潜力,该解决方案满足了伤口愈合中的诊断和治疗需求。