Tissue Engineering and Biomaterials Laboratory, Department of Biotechnology, Bhupat and Jyoti Mehta School of Biosciences, Indian Institute of Technology Madras, Chennai 600036, Tamil Nadu, India.
ACS Appl Bio Mater. 2021 Jun 21;4(6):5362-5377. doi: 10.1021/acsabm.1c00458. Epub 2021 May 11.
The traditional hydrogels are prone to break due to the applied stress. The deformation of the implanted hydrogels would result in the loss of structural integrity, leading to the failure of hydrogel functionalities and tissue regeneration. Self-healing hydrogels (AG-UPy), composed of oxidized alginate and ureidopyrimidinone-functionalized gelatin (G-UPy), were developed to address this challenge. These self-healing hydrogels possess two independent healing mechanisms, viz., Schiff base formation and UPy dimerization. These hydrogels were compared with oxidized alginate-gelatin (AG) hydrogels. AG-UPy hydrogels showed effective self-healing in a short time (about 2 min) after applying 800% strain, wherein recovery was not achieved with the AG hydrogel. However, the shear-thinning property of UPy made the AG-UPy hydrogel mechanically weaker than the AG hydrogel. To improve the mechanical strength of the AG-UPy hydrogel, we impregnated poly(ethylene glycol)-poly(urethane)/cloisite nanohybrid (PEG-PU/C) to prepare the AG-UPy/PEG-PU/C hydrogel. The incorporation of PEG-PU/C resulted in a 20-fold increase in the compression strength compared to that of the AG-UPy hydrogel. The AG-UPy/PEG-PU/C hydrogels also showed rapid self-healing. Incorporating the nanohybrid improved the cell proliferation by 2- and 1.25-fold compared to that of the AG and AG-UPy hydrogels, respectively. Therefore, PEG-PU/C combined with the UPy-functionalized polymer could be used to modulate mechanical strength and self-healing and enhance cell proliferation.
传统的水凝胶由于所施加的应力容易破裂。植入水凝胶的变形会导致结构完整性的丧失,从而导致水凝胶功能和组织再生的失败。为了解决这一挑战,开发了由氧化海藻酸钠和脲嘧啶嘧啶酮功能化明胶(G-UPy)组成的自修复水凝胶(AG-UPy)。这些自修复水凝胶具有两种独立的修复机制,即席夫碱形成和 UPy 二聚化。这些水凝胶与氧化海藻酸钠-明胶(AG)水凝胶进行了比较。AG-UPy 水凝胶在施加 800%应变后约 2 分钟即可有效快速自修复,而 AG 水凝胶则无法恢复。然而,UPy 的剪切变稀特性使 AG-UPy 水凝胶的机械强度弱于 AG 水凝胶。为了提高 AG-UPy 水凝胶的机械强度,我们浸渍了聚(乙二醇)-聚(尿烷)/cloisite 纳米杂化物(PEG-PU/C)以制备 AG-UPy/PEG-PU/C 水凝胶。与 AG-UPy 水凝胶相比,PEG-PU/C 的掺入使压缩强度提高了 20 倍。AG-UPy/PEG-PU/C 水凝胶也表现出快速的自修复。与 AG 和 AG-UPy 水凝胶相比,纳米杂化物的掺入使细胞增殖分别提高了 2 倍和 1.25 倍。因此,PEG-PU/C 与 UPy 功能化聚合物的结合可用于调节机械强度和自修复并增强细胞增殖。