Radhouani Hajer, Correia Susana, Gonçalves Cristiana, Reis Rui L, Oliveira Joaquim M
3B's Research Group, I3Bs-Research Institute on Biomaterials, Biodegradables and Biomimetics, University of Minho, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, AvePark, Parque de Ciência e Tecnologia, Zona Industrial da Gandra, Barco, 4805-017 Guimarães, Portugal.
ICVS/3B's-PT Government Associate Laboratory, Braga, 4805-017 Guimarães, Portugal.
Polymers (Basel). 2021 Apr 20;13(8):1342. doi: 10.3390/polym13081342.
Hydrogel application feasibility is still limited mainly due to their low mechanical strength and fragile nature. Therefore, several physical and chemical cross-linking modifications are being used to improve their properties. In this research, methacrylated Kefiran was synthesized by reacting Kefiran with methacrylic anhydride (MA). The developed MA-Kefiran was physicochemically characterized, and its biological properties evaluated by different techniques. Chemical modification of MA-Kefiran was confirmed by H-NMR and FTIR and GPC-SEC showed an average Mw of 793 kDa (PDI 1.3). The mechanical data obtained revealed MA-Kefiran to be a pseudoplastic fluid with an extrusion force of 11.21 ± 2.87 N. Moreover, MA-Kefiran 3D cryogels were successfully developed and fully characterized. Through micro-CT and SEM, the scaffolds revealed high porosity (85.53 ± 0.15%) and pore size (33.67 ± 3.13 μm), thick pore walls (11.92 ± 0.44 μm) and a homogeneous structure. Finally, MA-Kefiran revealed to be biocompatible by presenting no hemolytic activity and an improved cellular function of L929 cells observed through the AlamarBlue assay. By incorporating methacrylate groups in the Kefiran polysaccharide chain, a MA-Kefiran product was developed with remarkable physical, mechanical, and biological properties, resulting in a promising hydrogel to be used in tissue engineering and regenerative medicine applications.
水凝胶的应用可行性仍然主要受到其低机械强度和脆弱性质的限制。因此,人们正在使用几种物理和化学交联修饰方法来改善其性能。在本研究中,通过使凯夫兰与甲基丙烯酸酐(MA)反应合成了甲基丙烯酸化的凯夫兰。对所制备的MA-凯夫兰进行了物理化学表征,并通过不同技术评估了其生物学性质。通过H-NMR、FTIR证实了MA-凯夫兰的化学修饰,GPC-SEC显示其平均分子量为793 kDa(分散指数为1.3)。获得的力学数据表明MA-凯夫兰是一种假塑性流体,挤出力为11.21±2.87 N。此外,成功制备并全面表征了MA-凯夫兰3D冷冻凝胶。通过显微CT和扫描电子显微镜,支架显示出高孔隙率(85.53±0.15%)和孔径(33.67±3.13μm)、厚孔壁(11.92±0.44μm)以及均匀的结构。最后,通过AlamarBlue检测发现MA-凯夫兰无溶血活性且L929细胞的细胞功能得到改善,表明其具有生物相容性。通过在凯夫兰多糖链中引入甲基丙烯酸酯基团,开发出了具有卓越物理、机械和生物学性质的MA-凯夫兰产品,从而产生了一种有望用于组织工程和再生医学应用的水凝胶。