Ullah Salim, Hussain Zahid, Mehmood Shah, Samadikuchaksaraei Ali, Ullah Ismat, Khattak Saadullah, Liu Yuanshan, Ullah Ihsan, Pei Renjun
School of Nano-Tech and Nano-Bionics, University of Science and Technology of China (USTC), Hefei 230026, P. R. China.
CAS Key Laboratory for Nano-Bio Interface, Suzhou Institute of Nano-Tech and Nano-Bionics (SINANO), Chinese Academy of Sciences, Suzhou 215123, P. R. China.
ACS Appl Mater Interfaces. 2025 Feb 19;17(7):10470-10484. doi: 10.1021/acsami.4c20592. Epub 2025 Feb 6.
Management of infected diabetic wounds with large amounts of biofluid is challenging to treat due to localized edema-induced ischemia. Traditional hydrophilic dressings retain wound exudate, raise bacterial infection, and hinder wound healing. Herein, a multifunctional double-layer Janus fibrous hydrogel with a hydrophobic and superhydrophilic potential was designed to accelerate the healing of infected diabetic wounds. The outer hydrophobic layer is composed of a poly(vinylidene fluoride)/cellulose acetate-based nanofibrous composite. In contrast, the inner superhydrophilic layer is composed of photo-cross-linked gelatin methacrylate/polycaprolactone based nanofibrous hydrogel coated with a zinc-dopamine-based metal-phenolic network complex. The bilayer Janus fibrous hydrogel was characterized for its structural, physicochemical, mechanical, swelling, antioxidant, antibacterial, and cytocompatibility properties. Results indicated that the outer hydrophobic layer possesses excellent antifouling self-cleaning potential and can prevent the entry of environmental microorganisms and moisture. On the other hand, the supramolecular complex coated inner layer possesses good antibacterial, antioxidant, and cell-supportive properties. Furthermore, the potential of Janus fibrous hydrogel for infected wound healing was evaluated by using infected diabetic BALB/c mice. The bacterial invasions and histological and immunological results indicated that the Janus fibrous hydrogel possesses good wound reconstruction potential, angiogenesis, and collagen deposition, making it appropriate for diabetic wound treatment.
由于局部水肿引起的缺血,感染性糖尿病伤口伴有大量生物流体,其治疗具有挑战性。传统的亲水性敷料会保留伤口渗出液,增加细菌感染,并阻碍伤口愈合。在此,设计了一种具有疏水和超亲水特性的多功能双层Janus纤维水凝胶,以加速感染性糖尿病伤口的愈合。外部疏水层由聚偏二氟乙烯/醋酸纤维素基纳米纤维复合材料组成。相比之下,内部超亲水层由光交联甲基丙烯酸明胶/聚己内酯基纳米纤维水凝胶组成,并涂覆有锌-多巴胺基金属-酚醛网络复合物。对双层Janus纤维水凝胶的结构、物理化学、机械、膨胀、抗氧化、抗菌和细胞相容性等特性进行了表征。结果表明,外部疏水层具有优异的防污自清洁潜力,可防止环境微生物和水分进入。另一方面,超分子复合物涂层的内层具有良好的抗菌、抗氧化和细胞支持特性。此外,通过使用感染性糖尿病BALB/c小鼠评估了Janus纤维水凝胶在感染伤口愈合方面的潜力。细菌侵袭以及组织学和免疫学结果表明,Janus纤维水凝胶具有良好的伤口重建潜力、血管生成和胶原蛋白沉积能力,使其适用于糖尿病伤口治疗。