Li Jiaqi, Liu Xulong, Tao Weiyong, Li Yan, Du Yingying, Zhang Shengmin
Advanced Biomaterials and Tissue Engineering Center, Huazhong University of Science and Technology, Wuhan 430074, China.
NMPA Research Base of Regulatory Science for Medical Devices & Institute of Regulatory Science for Medical Devices, Huazhong University of Science and Technology, Wuhan 430074, China.
Regen Biomater. 2022 Dec 26;10:rbac108. doi: 10.1093/rb/rbac108. eCollection 2023.
Skin defect is common in daily life, but repairing large skin defects remains a challenge. Using biomaterials to deliver biochemical or physical factors to promote skin tissue regeneration is of great significance for accelerating wound healing. Specific surface micropatterns on biomaterials could affect cell behavior and tissue regeneration. However, few studies have focused on the construction of wound healing biomaterials with surface micropatterns and their role in skin tissue regeneration. In the present study, gelatin-polycaprolactone/silk fibroin composite membranes with different micropatterns were fabricated by photolithography, including line, grid and plane micropatterns. cell experiments demonstrated that the line micropattern on the composite membrane could guide cell-oriented growth, and more importantly, promote the expression of angiogenesis-related markers and α-smooth muscle actin (α-SMA) at both gene level and protein level. In the rat full-thickness skin defect model, the composite membrane with line micropatterns increased α-SMA production and neovascularization in wounds, leading to accelerated wound contraction and healing. The current study not only suggests that composite membranes with specific micropatterns can be promising wound repair materials but also provides new insights into the importance of biomaterial surface topology for tissue regeneration.
皮肤缺损在日常生活中很常见,但修复大面积皮肤缺损仍然是一项挑战。使用生物材料传递生化或物理因子以促进皮肤组织再生对于加速伤口愈合具有重要意义。生物材料上的特定表面微图案可能会影响细胞行为和组织再生。然而,很少有研究关注具有表面微图案的伤口愈合生物材料的构建及其在皮肤组织再生中的作用。在本研究中,通过光刻技术制备了具有不同微图案的明胶-聚己内酯/丝素蛋白复合膜,包括线条、网格和平面微图案。细胞实验表明,复合膜上的线条微图案可以引导细胞定向生长,更重要的是,在基因水平和蛋白质水平上促进血管生成相关标志物和α-平滑肌肌动蛋白(α-SMA)的表达。在大鼠全层皮肤缺损模型中,具有线条微图案的复合膜增加了伤口中α-SMA的产生和新血管形成,导致伤口收缩和愈合加速。当前的研究不仅表明具有特定微图案的复合膜有望成为伤口修复材料,而且还为生物材料表面拓扑结构对组织再生的重要性提供了新的见解。