Department of Polymer Science and Engineering, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, China; Guangdong Laboratory of Chemistry and Fine Chemical Industry Jieyang Center, Guangdong 522000, China; Frontiers Science Center for Synthetic Biology, Key Laboratory of Systems Bioengineering (MOE), Tianjin University, Tianjin 300350, China.
Department of Polymer Science and Engineering, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, China; Guangdong Laboratory of Chemistry and Fine Chemical Industry Jieyang Center, Guangdong 522000, China.
Acta Biomater. 2023 Nov;171:428-439. doi: 10.1016/j.actbio.2023.09.015. Epub 2023 Sep 15.
The non-fouling condition, bacteria-free environment and suitable moisture at wound site are crucial for chronic wound healing. However, it remains highly meaningful yet challenging to develop wound dressings that can simultaneously achieve these desirable functions. In this work, a kind of multifunctional Janus polyurethane sponge (Janus-PU) was designed and fabricated by coating near-infrared (NIR)-responsive and superhydrophobic nanoparticles (F-ZnO@Ag NPs) on one surface of sponge. The nano-functionalized outer layer can endow Janus-PU with superhydrophobic antifouling property for preventing bacterial colonization and broad-spectrum antibacterial activity due to the presence of Ag NPs. Especially, the synergistic combination of asymmetric structure and strong NIR photothermal effect can impart Janus-PU with NIR-controlled unidirectional exudate removal, thus achieving an optimal wetting environment for wound healing. The mice full-thickness skin acute wounds treated with Janus-PU under NIR irradiation showed superior anti-infection and healing effect compared to the commercial dressings. Significantly, the treatment using Janus-PU with NIR irradiation can accelerate the recovery of methicillin-resistant Staphylococcus aureus (MRSA)-infected diabetic chronic wounds due to the synergistic effect of antibiofouling, antibacterial and exudate-managing. The Janus-PU as a promising multifunctional dressing can prevent bacterial invasion and create an appropriate environment for wound healing, providing an effective solution for intractable wounds and infections. STATEMENT OF SIGNIFICANCE: The development of advanced wound dressings to ensure non-fouling condition, bacteria-free environment and suitable moisture is crucial for chronic wound healing. However, it remains a considerable challenge to simultaneously integrate antibiofouling, antibacterial and exudate-managing properties into a single dressing. In this work, we developed a kind of multifunctional Janus polyurethane sponge (Janus-PU) by a single-sided superhydrophobic modification strategy, which can simultaneously achieve superhydrophobic antifouling property, effective broad-spectrum antibacterial and near-infrared controlled exudate removal. The Janus-PU designed herein can not only create an optimal environment for accelerated wound healing, but also avoid frequent dressing replacement, thus providing an ideal material system for intractable wounds and infections.
非沾污状态、无细菌环境和伤口部位的适宜湿度对慢性伤口愈合至关重要。然而,开发同时具备这些理想功能的伤口敷料仍然具有重要意义和挑战性。在这项工作中,通过在海绵的一个表面上涂覆近红外(NIR)响应和超疏水纳米粒子(F-ZnO@Ag NPs),设计并制备了一种多功能的 Janus 聚氨酯海绵(Janus-PU)。纳米功能化的外层由于 Ag NPs 的存在,使 Janus-PU 具有超疏水性的防污性能,以防止细菌定植和广谱抗菌活性。特别是,不对称结构和强 NIR 光热效应的协同组合使 Janus-PU 具有 NIR 控制的单向渗出物去除能力,从而为伤口愈合创造了最佳的润湿环境。在 NIR 照射下用 Janus-PU 治疗的小鼠全层皮肤急性伤口与商业敷料相比表现出优异的抗感染和愈合效果。值得注意的是,由于防污、抗菌和渗出物管理的协同作用,Janus-PU 与 NIR 照射联合治疗可以加速耐甲氧西林金黄色葡萄球菌(MRSA)感染的糖尿病慢性伤口的恢复。Janus-PU 作为一种有前途的多功能敷料,可以防止细菌入侵并为伤口愈合创造适当的环境,为难治性伤口和感染提供了有效的解决方案。
开发先进的伤口敷料以确保非沾污状态、无细菌环境和适宜的湿度对于慢性伤口愈合至关重要。然而,将防污、抗菌和渗出物管理功能集成到单一敷料中仍然是一个相当大的挑战。在这项工作中,我们通过单边超疏水改性策略开发了一种多功能 Janus 聚氨酯海绵(Janus-PU),它可以同时实现超疏水性防污、有效广谱抗菌和近红外控制渗出物去除。本文设计的 Janus-PU 不仅可以为加速伤口愈合创造最佳环境,还可以避免频繁更换敷料,从而为难治性伤口和感染提供理想的材料系统。