Qiu Yuyu, Wang Qingqing, Chen Yajun, Xia Shufang, Huang Wei, Wei Qufu
Wuxi school of medicine, Jiangnan University, Wuxi 214122, China.
Key Laboratory of Eco-Textiles, Ministry of Education, Jiangnan University, Wuxi 214122, China.
Polymers (Basel). 2020 Mar 4;12(3):573. doi: 10.3390/polym12030573.
To develop a wound dressing material that conforms to the healing process, we prepared a multilayer composite (MC) membrane consisting of an antibacterial layer (ABL), a reinforcement layer (RFL), and a healing promotion layer (HPL). Biocompatible zein/ethyl cellulose (zein/EC) electrospun nanofibrous membranes with in situ loaded antibacterial photosensitizer protoporphyrin (PPIX) and healing promotion material vaccarin (Vac) were, respectively, chosen as the ABL on the surface and the HPL on the bottom, between which nonwoven incorporated bacterial cellulose (BC/PETN) as the HPL was intercalated to enhance the mechanical property. Photodynamic antibacterial activity against and was confirmed by the enlarged inhibition zones; meanwhile, satisfactory biocompatibility of the HPL was verified by scanning electronic microscopy (SEM) of L929 cells cultured on its surface. The potential effects on wound healing in a mice skin defect model of the MC membranes were also evaluated. The animal experiments demonstrated that the wound healing rate in the MC group was significantly increased compared with that in the control group ( < 0.05). Histopathological observation revealed an alleviated inflammatory response, accompanied with vascular proliferation in the MC group. The MC membranes significantly promoted wound healing by creating an antibacterial environment and promoting angiogenesis. Taken together, this MC membrane may act as a promising wound dressing for skin wound healing.
为了开发一种符合愈合过程的伤口敷料材料,我们制备了一种多层复合材料(MC)膜,其由抗菌层(ABL)、增强层(RFL)和愈合促进层(HPL)组成。分别选择原位负载抗菌光敏剂原卟啉(PPIX)的生物相容性玉米醇溶蛋白/乙基纤维素(zein/EC)电纺纳米纤维膜作为表面的ABL和底部的HPL,在它们之间插入掺入细菌纤维素的非织造布(BC/PETN)作为RFL以增强机械性能。通过扩大的抑制圈证实了对[具体细菌名称1]和[具体细菌名称2]的光动力抗菌活性;同时,通过对在其表面培养的L929细胞进行扫描电子显微镜(SEM)观察,验证了HPL具有令人满意的生物相容性。还评估了MC膜对小鼠皮肤缺损模型伤口愈合的潜在影响。动物实验表明,MC组的伤口愈合率与对照组相比显著提高(P<0.05)。组织病理学观察显示MC组炎症反应减轻,伴有血管增生。MC膜通过营造抗菌环境和促进血管生成,显著促进了伤口愈合。综上所述,这种MC膜可能是一种有前途的用于皮肤伤口愈合的伤口敷料。