School of Chemical and Environmental Engineering, Wuhan Polytechnic University, Wuhan, China.
College of Life Science and Technology, Hubei Key Laboratory of Quality Control of Characteristic Fruits and Vegetables, Hubei Engineering University, Xiaogan, China.
J Biomater Sci Polym Ed. 2024 Jul;35(10):1523-1536. doi: 10.1080/09205063.2024.2338004. Epub 2024 Apr 4.
The interaction between the integrin and collagen is important in cell adhesion and signaling. Collagen, as the main component of extracellular matrix, is a base material for tissue engineering constructs. In tissue engineering, the collagen structure and molecule state may be altered to varying degrees in the process of processing and utilizing, thereby affecting its biological properties. In this work, the impact of changes in collagen structure and molecular state on the binding properties of collagen to integrin α2β1 and integrin specific cell adhesion were explored. The results showed that the molecular structure of collagen is destroyed under the influence of heating, freeze-grinding and irradiation, the triple helix integrity is reduced and molecular breaking degree is increased. The binding ability of collagen to integrin α2β1 is increased with the increase of triple helix integrity and decays exponentially with the increase of molecular breaking degree. The collagen molecular state can also influences the binding ability of collagen to cellular receptor. The collagen fibrils binding to integrin α2β1 and HT1080 cells is stronger than to collagen monomolecule. Meanwhile, the hybrid fibril exhibits a different cellular receptor binding performance from corresponding single species collagen fibril. These findings provide ideas for the design and development of new collagen-based biomaterials and tissue engineering research.
整合素与胶原的相互作用对细胞黏附和信号转导非常重要。胶原作为细胞外基质的主要成分,是组织工程构建物的基础材料。在组织工程中,胶原的结构和分子状态在加工和利用过程中可能会发生不同程度的改变,从而影响其生物学特性。在这项工作中,我们探讨了胶原结构和分子状态的变化对胶原与整合素α2β1结合特性以及整合素特异性细胞黏附的影响。结果表明,加热、冷冻粉碎和辐照会破坏胶原的分子结构,降低三螺旋的完整性,增加分子断裂程度。胶原与整合素α2β1的结合能力随三螺旋完整性的增加而增加,并随分子断裂程度的增加呈指数衰减。胶原分子状态也会影响胶原与细胞受体的结合能力。与胶原单分子相比,胶原原纤维与整合素α2β1和 HT1080 细胞的结合能力更强。同时,杂化原纤维表现出与相应单一物种胶原原纤维不同的细胞受体结合性能。这些发现为新型基于胶原的生物材料的设计和开发以及组织工程研究提供了思路。