Biomaterials and Biomedical Engineering Research Laboratory, Center for Structural and Functional Materials, University of Louisiana at Lafayette, PO Box 44130, Lafayette, LA 70504-4130, USA.
Acta Biomater. 2009 Nov;5(9):3453-66. doi: 10.1016/j.actbio.2009.05.012. Epub 2009 May 19.
The favorable cellular response of newly developed cell line, buffalo embryonic stem (ES) cells to three-dimensional biodegradable chitosan-gelatin composite scaffolds with regard to stem-cell-based tissue engineering is described. Chitosan-gelatin composites were characterized by a highly porous structure with interconnected pores, and the mechanical properties were significantly enhanced. Furthermore, X-ray diffraction study indicated increased amorphous content in the scaffold on the addition of gelatin to chitosan. To develop a transfectant of green fluorescence protein (GFP)-buffalo ES cell, transfection of GFP plasmid to the cell was carried out via the electroporation procedure. In comparison with pure chitosan, cell spreading and proliferation were greater in highly visualized GFP-expressing cell-chitosan-gelatin scaffold constructs. The relative comparison of biological response involving cell proliferation and viability on the scaffolds suggests that blending of gelatin in chitosan improved cellular efficiency. Studies involving scanning electron and fluorescence microscopy, histological observations and flow cytometer analysis of the constructs implied that the polygonal cells attached to and penetrated the pores, and proliferated well, while maintaining their pluripotency during the culture period for 28days. Chitosan-gelatin scaffolds were cytocompatible with respect to buffalo ES cells. The study underscores for the first time that chitosan-gelatin scaffolds are promising candidates for ES-cell-based tissue engineering.
新开发的水牛胚胎干细胞系对三维可生物降解壳聚糖-明胶复合材料支架具有良好的细胞反应,这与基于干细胞的组织工程有关。壳聚糖-明胶复合材料具有高度多孔的结构和相互连通的孔,其机械性能得到了显著提高。此外,X 射线衍射研究表明,在壳聚糖中添加明胶后,支架的非晶态含量增加。为了开发转染绿色荧光蛋白(GFP)-水牛胚胎干细胞的转染体,通过电穿孔程序将 GFP 质粒转染到细胞中。与纯壳聚糖相比,在高可视化 GFP 表达细胞-壳聚糖-明胶支架结构中,细胞的铺展和增殖更大。对支架上细胞增殖和活力的生物反应的相对比较表明,壳聚糖中明胶的混合提高了细胞效率。扫描电子显微镜和荧光显微镜、组织学观察以及对构建体的流式细胞仪分析的研究表明,多角形细胞附着并穿透孔,并在 28 天的培养期间增殖良好,同时保持其多能性。壳聚糖-明胶支架对水牛胚胎干细胞具有细胞相容性。这项研究首次强调了壳聚糖-明胶支架是基于胚胎干细胞的组织工程的有前途的候选材料。