Biomedical devices such as islet-encapsulating systems are used for treatment of type 1 diabetes (T1D). Despite recent strides in preventing biomaterial fibrosis, challenges remain for biomaterial scaffolds due to limitations on cells contained within. The study demonstrates that proliferation and function of insulinoma (INS-1) cells as well as pancreatic rat islets may be improved in alginate hydrogels with optimized gel%, crosslinking, and stiffness. Quantitative polymerase chain reaction (qPCR)-based graft phenotyping of encapsulated INS-1 cells and pancreatic islets identified a hydrogel stiffness range between 600 and 1000Â Pa that improved insulin Ins and Pdx1Â gene expression as well as glucose-sensitive insulin-secretion. Barium chloride (BaCl(2)) crosslinking time is also optimized due to toxicity of extended exposure. Despite possible benefits to cell viability, calcium chloride (CaCl(2))-crosslinked hydrogels exhibited a sharp storage modulus loss in vitro. Despite improved stability, BaCl(2)-crosslinked hydrogels also exhibited stiffness losses over the same timeframe. It is believed that this is due to ion exchange with other species in culture media, as hydrogels incubated in dIH(2)O exhibited significantly improved stability. To maintain cell viability and function while increasing 3D matrix stability, a range of useful media:dIH(2)O dilution ratios for use are identified. Such findings have importance to carry out characterization and optimization of cell microphysiological systems with high fidelity in vitro.
Hydrogel Alginate Considerations for Improved 3D Matrix Stability and Cell Graft Viability and Function in Studying Type 1 Diabetes In Vitro.
水凝胶藻酸盐在体外研究 1 型糖尿病中改善 3D 基质稳定性、细胞移植活力和功能方面的考虑因素
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作者:Quiroz Victor M, Wang Yuanjia, Rakoski Amanda I, Kasinathan Devi, Neshat Sarah Y, Hollister-Lock Jennifer, Doloff Joshua C
| 期刊: | Advanced Biology | 影响因子: | 3.200 |
| 时间: | 2024 | 起止号: | 2024 Aug;8(8):e2300502 |
| doi: | 10.1002/adbi.202300502 | 研究方向: | 细胞生物学 |
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