Zeng Mingzhu, Huang Zhimao, Cen Xiao, Zhao Yinyu, Xu Fei, Miao Jiru, Zhang Quan, Wang Rong
Institute of Smart Biomedical Materials, School of Materials Science and Engineering, Zhejiang Sci-Tech University, Hangzhou 310018, China.
Zhejiang International Scientific and Technological Cooperative Base of Biomedical Materials and Technology, Institute of Biomedical Engineering, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China.
Gels. 2023 Dec 21;10(1):6. doi: 10.3390/gels10010006.
Traditional hydrogels, as wound dressings, usually exhibit poor mechanical strength and slow drug release performance in clinical biomedical applications. Although various strategies have been investigated to address the above issues, it remains a challenge to develop a simple method for preparing hydrogels with both toughness and controlled drug release performance. In this study, a tannic acid-reinforced poly (sulfobetaine methacrylate) (TAPS) hydrogel was fabricated via free radical polymerization, and the TAPS hydrogel was subjected to a simple electrophoresis process to obtain the hydrogels with a gradient distribution of copper ions. These gradient hydrogels showed tunable mechanical properties by changing the electrophoresis time. When the electrophoresis time reached 15 min, the hydrogel had a tensile strength of 368.14 kPa, a tensile modulus of 16.17 kPa, and a compressive strength of 42.77 MPa. It could be loaded at 50% compressive strain and then unloaded for up to 70 cycles and maintained a constant compressive stress of 1.50 MPa. The controlled release of copper from different sides of the gradient hydrogels was observed. After 6 h of incubation, the hydrogel exhibited a strong bactericidal effect on Gram-positive and Gram-negative , with low toxicity to NIH/3T3 fibroblasts. The high toughness, controlled release of copper, and enhanced antimicrobial properties of the gradient hydrogels make them excellent candidates for wound dressings in biomedical applications.
传统水凝胶作为伤口敷料,在临床生物医学应用中通常表现出较差的机械强度和缓慢的药物释放性能。尽管已经研究了各种策略来解决上述问题,但开发一种制备兼具韧性和可控药物释放性能的水凝胶的简单方法仍然是一个挑战。在本研究中,通过自由基聚合制备了单宁酸增强的聚(甲基丙烯酸磺基甜菜碱)(TAPS)水凝胶,并对TAPS水凝胶进行简单的电泳过程,以获得具有铜离子梯度分布的水凝胶。这些梯度水凝胶通过改变电泳时间显示出可调的机械性能。当电泳时间达到15分钟时,水凝胶的拉伸强度为368.14 kPa,拉伸模量为16.17 kPa,抗压强度为42.77 MPa。它可以在50%的压缩应变下加载,然后卸载多达70个循环,并保持1.50 MPa的恒定压缩应力。观察到梯度水凝胶不同侧面的铜的可控释放。孵育6小时后,水凝胶对革兰氏阳性菌和革兰氏阴性菌表现出强大的杀菌作用,对NIH/3T3成纤维细胞毒性低。梯度水凝胶的高韧性、铜的可控释放和增强的抗菌性能使其成为生物医学应用中伤口敷料的优秀候选材料。