Li Huamin, Zhang Ying, Wu Haidi, Liu Zhanqi, Guan Cheng, Zhang Jin, Chen Jingyi, He Shaohua, Huang Xuewu, Gu Wancheng, Mai Yiu Wing, Gao Jiefeng
School of Chemistry and Chemical Engineering, Yangzhou University, No 180, Road Siwangting, Yangzhou, Jiangsu, 225002, P. R. China.
MOE Key Laboratory for Analytical Science of Food Safety and Biology, College of Chemistry, Fuzhou University, 2 Xueyuan Road, Fuzhou, 350108, P. R. China.
Adv Sci (Weinh). 2025 Jul;12(28):e2503697. doi: 10.1002/advs.202503697. Epub 2025 May 8.
It is highly desirable but still remains challenging to develop high-performance hydrogels with satisfactory mechanical properties for tissue engineering. Here, anisotropic yet transparent hydrogels (AHs) are prepared for tendon repair via a facile "poor solvent evaporation assisted hot-stretching" strategy. AHs have great mechanical properties with tensile strength, toughness, and fracture energy as high as 33.14 ± 2.05 MPa, 44.1 ± 3.5 MJ m, and 106.18 ± 7.2 kJ m, respectively. Especially, AHs show unique flaw-insensitive characteristics, and cracks can only deflect along the fiber alignment direction rather than propagate transverse to this direction, showing an interesting self-protection function. The high strength, toughness, and fatigue resistance originate from the hierarchal structure of AHs, i.e., the densified polymeric network comprising fiber bundles and nanofibrils with aligned macromolecular chains, crystalline domains, and intermolecular hydrogen bonds. AHs with superior biocompatibility and swelling resistance can be used to repair rat tendons, and implantation of AHs can promote collagen regeneration for the tendon repair. This study provides a new method to fabricate strong and anti-fatigue hydrogels as a new class of promising materials for soft tissues.
开发具有令人满意的机械性能的高性能水凝胶用于组织工程是非常理想的,但仍然具有挑战性。在此,通过一种简便的“不良溶剂蒸发辅助热拉伸”策略制备了用于肌腱修复的各向异性且透明的水凝胶(AHs)。AHs具有优异的机械性能,其拉伸强度、韧性和断裂能分别高达33.14±2.05MPa、44.1±3.5MJ/m和106.18±7.2kJ/m。特别是,AHs表现出独特的对缺陷不敏感的特性,裂纹只能沿纤维排列方向偏转,而不会横向于该方向扩展,显示出有趣的自我保护功能。高强度、韧性和抗疲劳性源于AHs的分级结构,即由纤维束和纳米纤维组成的致密聚合物网络,其中大分子链排列整齐,存在结晶域和分子间氢键。具有优异生物相容性和抗溶胀性的AHs可用于修复大鼠肌腱,植入AHs可促进肌腱修复的胶原蛋白再生。本研究提供了一种制备强韧且抗疲劳水凝胶的新方法,作为一类用于软组织的有前途的新型材料。