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Towards high throughput tissue engineering: development of chitosan-calcium phosphate scaffolds for engineering bone tissue from embryonic stem cells

机译:迈向高通量组织工程:壳聚糖-磷酸钙支架的开发用于从胚胎干细胞中工程化骨组织

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摘要

Tissue engineering strategies have shown promise for the repair of damaged organs, including bone. One of the major challenges associated with tissue engineering is how to scale up such processes for high throughput manufacturing of biomaterial scaffolds used to support stem cell culture. Generation of certain types of 3D biomaterial scaffolds, including chitosan-calcium phosphate blends, involves a slow fabrication process followed by a lengthy required freeze drying step. This work investigates the use of automated microwave vacuum drying technology as an alternative to traditional freeze drying as a method of fabricating chitosan-calcium phosphate scaffolds for supporting embryonic stem cell cultures. Scaffolds produced using both drying techniques possess similar properties when characterized using scanning electron microscopy and this paper is the first to report that both types of these scaffolds support undifferentiated embryonic stem cell culture as well as promote stem cell differentiation into osteogenic lineages when treated with the appropriate factors. Compared to existing scaffold manufacturing processes using freeze drying, the use of microwave vacuum drying will lead to faster production times while reducing the costs, enabling high-throughput manufacturing of biomaterial scaffolds for stem cell applications.
机译:组织工程学策略已显示出修复受损器官(包括骨骼)的希望。与组织工程相关的主要挑战之一是如何扩大用于高通量生产用于支持干细胞培养的生物材料支架的此类过程。某些类型的3D生物材料支架的生产,包括壳聚糖-磷酸钙共混物,涉及缓慢的制造过程,随后需要漫长的冷冻干燥步骤。这项工作研究了自动微波真空干燥技术作为传统冷冻干燥的替代方法的应用,该技术是制备用于支持胚胎干细胞培养的壳聚糖-磷酸钙支架的方法。使用扫描电子显微镜对使用两种干燥技术生产的支架进行表征时具有相似的特性,本文首次报道了这两种类型的支架均支持未分化的胚胎干细胞培养,并在经过适当处理后能促进干细胞分化为成骨细胞系因素。与使用冷冻干燥的现有支架制造工艺相比,微波真空干燥的使用将导致更快的生产时间,同时降低成本,从而实现了用于干细胞应用的生物材料支架的高通量制造。

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