Faculty of Medicine and Health Technology and BioMediTech, Tampere University, FI-33014 Tampere, Finland.
School of Biochemistry and Biotechnology, University of the Punjab, 54590 Lahore, Pakistan.
Biomacromolecules. 2021 Oct 11;22(10):4122-4137. doi: 10.1021/acs.biomac.1c00579. Epub 2021 Sep 20.
The future success of physiologically relevant three-dimensional (3D) cell/tissue models is dependent on the development of functional biomaterials, which can provide a well-defined 3D environment instructing cellular behavior. To establish a platform to produce tailored hydrogels, we conjugated avidin (Avd) to anionic nanofibrillar cellulose (aNFC) and demonstrated the use of the resulting Avd-NFC hydrogel for 3D cell culture, where Avd-NFC allows easy functionalization biotinylated molecules. Avidin was successfully conjugated to nanocellulose and remained functional, as demonstrated by electrophoresis and titration with fluorescent biotin. Rheological analysis indicated that Avd-NFC retained shear-thinning and gel-forming properties. Topological characterization using AFM revealed the preserved fiber structure and confirmed the binding of biotinylated vitronectin (B-VN) on the fiber surface. The 3D cell culture experiments with mouse embryonic fibroblasts demonstrated the performance of Avd-NFC hydrogels functionalized with biotinylated fibronectin (B-FN) and B-VN. Cells cultured in Avd-NFC hydrogels functionalized with B-FN or B-VN formed matured integrin-mediated adhesions, indicated by phosphorylated focal adhesion kinase. We observed significantly higher cell proliferation rates when biotinylated proteins were bound to the Avd-NFC hydrogel compared to cells cultured in Avd-NFC alone, indicating the importance of the presence of adhesive sites for fibroblasts. The versatile Avd-NFC allows the easy functionalization of hydrogels with virtually any biotinylated molecule and may become widely utilized in 3D cell/tissue culture applications.
未来具有生理相关性的三维(3D)细胞/组织模型的成功取决于功能生物材料的发展,这些材料可为细胞行为提供明确的 3D 环境。为了建立一个生产定制水凝胶的平台,我们将亲和素(Avd)与带负电荷的纳米原纤纤维素(aNFC)偶联,并展示了由此产生的 Avd-NFC 水凝胶在 3D 细胞培养中的用途,其中 Avd-NFC 允许轻松功能化生物素化分子。亲和素成功地与纳米纤维素偶联并保持功能,如电泳和用荧光生物素来滴定所示。流变分析表明,Avd-NFC 保留了剪切稀化和形成凝胶的特性。使用 AFM 进行的拓扑结构表征表明保留了纤维结构,并证实了纤维表面结合了生物素化的 vitronectin(B-VN)。用生物素化纤连蛋白(B-FN)和 B-VN 功能化的 Avd-NFC 水凝胶的 3D 细胞培养实验表明了该水凝胶的性能。在 Avd-NFC 水凝胶功能化的 B-FN 或 B-VN 上培养的细胞形成了成熟的整合素介导的黏附,这由磷酸化的粘着斑激酶表示。与单独在 Avd-NFC 中培养的细胞相比,当生物素化蛋白结合到 Avd-NFC 水凝胶上时,观察到细胞增殖率明显提高,这表明黏附位点的存在对成纤维细胞很重要。多功能的 Avd-NFC 允许轻松地用几乎任何生物素化分子功能化水凝胶,并且可能在 3D 细胞/组织培养应用中得到广泛应用。