伤口愈合
乙酰半胱氨酸
体内
脚手架
细胞迁移
静电纺丝
极限抗拉强度
材料科学
生物医学工程
药理学
化学
抗氧化剂
体外
医学
外科
生物化学
复合材料
聚合物
生物技术
生物
作者
Jinfei Hou,Lifeng Chen,Muran Zhou,Jialun Li,Jian Liu,Huimin Fang,Yuyang Zeng,Jiaming Sun,Zhenxing Wang
摘要
Impaired wound healing might be associated with many issues, especially overactive of reactive oxygen species (ROS), deficiency of blood vessels and immature of epidermis. N-acetylcysteine (NAC), as an antioxidant, could solve these problems by inhibiting overreactive of ROS, promoting revascularization and accelerating re-epithelialization. How to deliver NAC in situ with a controllable releasing speed still remain a challenge.In this study, we combined collagen (Col) with N-acetylcysteine to perform the characteristics of sustained release and chemically crosslinked Col/NAC composite with polyamide (PA) nanofibers to enhance the mechanical property of collagen and fabricated this multi-layered scaffold (PA-Col/NAC scaffold). The physical properties of the scaffolds such as surface characteristics, water absorption and tensile modulus were tested. Meanwhile, the ability to promote wound healing in vitro and in vivo were investigated.These scaffolds were porous and performed great water absorption. The PA-Col/NAC scaffold could sustainably release NAC for at least 14 days. After cell implantation, PA-Col/NAC scaffold showed better cell proliferation and cell migration than the other groups. In vivo, PA-Col/NAC scaffolds could promote wound healing best among all the groups.The multi-layered scaffolds could obviously accelerate the process of wound healing and exert better and prolonged effects.
科研通智能强力驱动
Strongly Powered by AbleSci AI