Tissue Engineering and Regenerative Medicine Department, School of Biomedical Engineering, International University, Ho Chi Minh City, Vietnam.
Vietnam National University, Ho Chi Minh City, Vietnam.
J Biomed Mater Res A. 2021 Dec;109(12):2414-2424. doi: 10.1002/jbm.a.37222. Epub 2021 Jun 19.
In this study, the effect of coated hydrogel layer on characteristics of the whole gelatin/silver nanoparticles multi-coated polycaprolactone membrane (PCLGelAg) was investigated through systematic and typical wound dressing characterizations to select the optimal number of layers for practical applications. Scanning electron microscopy, free swell absorptive capacity and tensile test in both wet and dry conditions were conducted to characterize all fabricated membranes of six coating times. In vitro cytotoxicity and agar diffusion evaluation were also carried out to assess the biocompatibility and antibacterial activity of the membranes. The findings illustrated that as the coated layers increase, the absorptive capacity, and degradation rate were higher, the membranes were stiffer in dry state while the tensile strength in wet state, elongation, and cell viability were significantly decreased. PCLGelAg3 was chosen to be the best fit for wound healing since it maintained quite sufficient maximum buffer uptake, elasticity, cell viability along with inducing abnormalities in bacterial morphology and preventing biofilm formation.
在这项研究中,通过系统和典型的伤口敷料特性研究了涂覆水凝胶层对整个明胶/银纳米粒子多层聚己内酯膜(PCLGelAg)特性的影响,以选择适用于实际应用的最佳涂层数。通过扫描电子显微镜、自由溶胀吸收能力和干湿条件下的拉伸试验对六次涂层的所有制备膜进行了表征。还进行了体外细胞毒性和琼脂扩散评估,以评估膜的生物相容性和抗菌活性。研究结果表明,随着涂层数量的增加,吸收能力和降解率提高,干燥状态下的膜更硬,而在湿状态下的拉伸强度、伸长率和细胞活力显著降低。选择 PCLGelAg3 作为最适合伤口愈合的材料,因为它保持了相当充足的最大缓冲吸收能力、弹性、细胞活力,同时诱导细菌形态异常并防止生物膜形成。