Karvinen Jennika, Koivisto Janne T, Jönkkäri Ilari, Kellomäki Minna
BioMediTech Institute and Faculty of Biomedical Sciences and Engineering, Tampere University of Technology, Korkeakoulunkatu 3, FI-33101 Tampere, Finland.
BioMediTech Institute and Faculty of Biomedical Sciences and Engineering, Tampere University of Technology, Korkeakoulunkatu 3, FI-33101 Tampere, Finland; BioMediTech Institute and Faculty of Medicine and Life Sciences, University of Tampere, Lääkärinkatu 1, FI-33520 Tampere, Finland.
J Mech Behav Biomed Mater. 2017 Jul;71:383-391. doi: 10.1016/j.jmbbm.2017.04.006. Epub 2017 Apr 7.
Gellan gum (GG) has been proposed for use in tissue engineering (TE) due to its structural and functional similarities with alginate. The most traditional crosslinking methods of GG, ionical and photocrosslinking, have downsides such as loss of stability or phototoxicity, which can limit their use in certain applications. In this study, an alternative hydrazone crosslinking method is introduced. Hydrazone crosslinking is a simple method that produces no toxic reagents or side-products. The method enables the fabrication of injectable hydrogels. GG was combined with hyaluronan (HA) to improve some properties such as cell attachment. The mechanical and physical properties of GG-HA hydrogels were controlled by changing the molecular weight, the degree of modification, and the ratio of polymer components. GG-HA hydrogels showed ionic nature of deswelling in the presence of cations enabling the control of physical properties in different solution environments. Due to the non-linear elastic behavior of hydrogels and tissues, the stiffness as a function of strain was represented instead of solely giving the second-order elastic constants. The stiffness of GG-HA hydrogels was similar to that of soft tissues at small strains.
由于结冷胶(GG)与海藻酸盐在结构和功能上具有相似性,已被提议用于组织工程(TE)。GG最传统的交联方法,即离子交联和光交联,存在稳定性丧失或光毒性等缺点,这可能会限制它们在某些应用中的使用。在本研究中,引入了一种替代的腙交联方法。腙交联是一种简单的方法,不会产生有毒试剂或副产物。该方法能够制备可注射水凝胶。GG与透明质酸(HA)结合以改善某些性能,如细胞附着。通过改变分子量、修饰程度和聚合物组分的比例来控制GG-HA水凝胶的机械和物理性能。GG-HA水凝胶在阳离子存在下表现出离子性溶胀,从而能够在不同的溶液环境中控制物理性能。由于水凝胶和组织的非线性弹性行为,用刚度作为应变的函数来表示,而不是仅仅给出二阶弹性常数。在小应变下,GG-HA水凝胶的刚度与软组织相似。