Faculty of Medicine and Life Sciences and BioMediTech, University of Tampere , Lääkärinkatu 1, 33520 Tampere, Finland.
Fimlab Laboratories , Biokatu 4, 33520 Tampere, Finland.
ACS Appl Mater Interfaces. 2017 Jul 5;9(26):21959-21970. doi: 10.1021/acsami.7b02756. Epub 2017 Jun 23.
We describe herein a nanocellulose-alginate hydrogel suitable for 3D printing. The composition of the hydrogel was optimized based on material characterization methods and 3D printing experiments, and its behavior during the printing process was studied using computational fluid dynamics simulations. The hydrogel was biofunctionalized by the covalent coupling of an enhanced avidin protein to the cellulose nanofibrils. Ionic cross-linking of the hydrogel using calcium ions improved the performance of the material. The resulting hydrogel is suitable for 3D printing, its mechanical properties indicate good tissue compatibility, and the hydrogel absorbs water in moist conditions, suggesting potential in applications such as wound dressings. The biofunctionalization potential was shown by attaching a biotinylated fluorescent protein and a biotinylated fluorescent small molecule via avidin and monitoring the material using confocal microscopy. The 3D-printable bioactivated nanocellulose-alginate hydrogel offers a platform for the development of biomedical devices, wearable sensors, and drug-releasing materials.
我们在此描述了一种适用于 3D 打印的纳米纤维素-海藻酸盐水凝胶。通过材料特性分析方法和 3D 打印实验对水凝胶的组成进行了优化,并使用计算流体动力学模拟研究了其在打印过程中的行为。通过将增强型亲和素蛋白共价偶联到纤维素纳米纤维上,使水凝胶具有生物功能化。通过钙离子对水凝胶进行离子交联,提高了材料的性能。所得水凝胶适合 3D 打印,其机械性能表明具有良好的组织相容性,并且在潮湿条件下吸收水分,这表明在伤口敷料等应用中具有潜力。通过亲和素将生物素化的荧光蛋白和生物素化的荧光小分子连接,并使用共聚焦显微镜监测材料,显示了生物功能化的潜力。可 3D 打印的生物激活纳米纤维素-海藻酸盐水凝胶为开发生物医学设备、可穿戴传感器和药物释放材料提供了平台。