Malcor Jean-Daniel, Hunter Emma J, Davidenko Natalia, Bax Daniel V, Cameron Ruth, Best Serena, Sinha Sanjay, Farndale Richard W
Department of Biochemistry, University of Cambridge, Cambridge CB2 1QW, UK.
Department of Materials Science and Metallurgy, University of Cambridge, Cambridge CB3 0FS, UK.
Regen Biomater. 2020 Aug 18;7(5):471-482. doi: 10.1093/rb/rbaa025. eCollection 2020 Oct.
Porous biomaterials which provide a structural and biological support for cells have immense potential in tissue engineering and cell-based therapies for tissue repair. Collagen biomaterials that can host endothelial cells represent promising tools for the vascularization of engineered tissues. Three-dimensional collagen scaffolds possessing controlled architecture and mechanical stiffness are obtained through freeze-drying of collagen suspensions, followed by chemical cross-linking which maintains their stability. However, cross-linking scaffolds renders their biological activity suboptimal for many cell types, including human umbilical vein endothelial cells (HUVECs), by inhibiting cell-collagen interactions. Here, we have improved crucial HUVEC interactions with such cross-linked collagen biomaterials by covalently coupling combinations of triple-helical peptides (THPs). These are ligands for collagen-binding cell-surface receptors (integrins or discoidin domain receptors) or secreted proteins (SPARC and von Willebrand factor). THPs enhanced HUVEC adhesion, spreading and proliferation on 2D collagen films. THPs grafted to 3D-cross-linked collagen scaffolds promoted cell survival over seven days. This study demonstrates that THP-functionalized collagen scaffolds are promising candidates for hosting endothelial cells with potential for the production of vascularized engineered tissues in regenerative medicine applications.
为细胞提供结构和生物支持的多孔生物材料在组织工程和基于细胞的组织修复治疗中具有巨大潜力。能够容纳内皮细胞的胶原蛋白生物材料是工程组织血管化的有前景的工具。通过对胶原蛋白悬浮液进行冷冻干燥,然后进行化学交联以维持其稳定性,可获得具有可控结构和机械刚度的三维胶原蛋白支架。然而,交联支架会抑制细胞与胶原蛋白的相互作用,从而使其对包括人脐静脉内皮细胞(HUVECs)在内的许多细胞类型的生物活性欠佳。在此,我们通过共价偶联三螺旋肽(THPs)组合改善了HUVEC与此类交联胶原蛋白生物材料的关键相互作用。这些三螺旋肽是胶原蛋白结合细胞表面受体(整合素或盘状结构域受体)或分泌蛋白(SPARC和血管性血友病因子)的配体。THPs增强了HUVEC在二维胶原蛋白膜上的黏附、铺展和增殖。接枝到三维交联胶原蛋白支架上的THPs促进细胞存活超过七天。这项研究表明,THP功能化的胶原蛋白支架是用于容纳内皮细胞的有前景的候选材料,在再生医学应用中具有产生血管化工程组织的潜力。