Key Laboratory of Biomedical Materials and Implant Devices , Research Institute of Tsinghua University in Shenzhen , Shenzhen 518057 , P. R. China.
Department of Orthopedics, Zhujiang Hospital , Southern Medical University , Guangzhou 510280 , P. R. China.
ACS Appl Mater Interfaces. 2018 Oct 10;10(40):33879-33890. doi: 10.1021/acsami.8b10072. Epub 2018 Sep 25.
A wound dressing which can be convenient for real-time monitoring of wounds is particularly attractive and user-friendly. In this study, a nature-originated silk-sericin-based (SS-based) transparent hydrogel scaffold was prepared and evaluated for the visualization of wound care. The scaffold was fabricated from a hybrid interpenetrating-network (IPN) hydrogel composed of SS and methacrylic-anhydride-modified gelatin (GelMA) by 3D printing. The scaffold transformed into a highly transparent hydrogel upon swelling in PBS, and thus, anything underneath could be easily read. The scaffold had a high degree of swelling and presented a regularly macroporous structure with pores around 400 μm × 400 μm, which can help maintain the moist and apinoid environment for wound healing. Meanwhile, the scaffolds were conducive to adhesion and proliferation of L929 cells. A coculture of HaCaT and HSF cells on the scaffold showed centralized proliferation of the two cells in distributed layers, respectively, denoting a promising comfortable environment for re-epithelialization. Moreover, in vivo studies demonstrated that the scaffold showed no excessive inflammatory reaction. In short, this work presented an SS-based transparent hydrogel scaffold with steerable physical properties and excellent biocompatibility through 3D printing, pioneering promising applications in the visualization of wound care and drug delivery.
一种能够方便实时监测伤口的伤口敷料特别有吸引力且用户友好。在本研究中,制备了一种源于天然丝素-丝胶(SS)的透明水凝胶支架,并评估其用于伤口护理的可视化效果。该支架由 SS 和甲基丙烯酰基-酸酐改性明胶(GelMA)的混合互穿网络(IPN)水凝胶通过 3D 打印制成。支架在 PBS 中溶胀时转变为高度透明的水凝胶,因此可以轻松读取下面的任何东西。支架具有很高的溶胀度,并呈现出规则的大孔结构,孔径约为 400μm×400μm,有助于保持湿润和仿生环境,促进伤口愈合。同时,支架有利于 L929 细胞的黏附和增殖。在支架上进行 HaCaT 和 HSF 细胞的共培养显示,两种细胞分别在分布层中集中增殖,表明为再上皮化提供了有前途的舒适环境。此外,体内研究表明,支架没有引起过度的炎症反应。总之,这项工作通过 3D 打印展示了一种具有可控物理性质和优异生物相容性的基于 SS 的透明水凝胶支架,有望在伤口护理和药物输送的可视化方面得到应用。