Agbay Andrew, Edgar John M, Robinson Meghan, Styan Tara, Wilson Krista, Schroll Julian, Ko Junghyuk, Khadem Mohtaram Nima, Jun Martin Byung-Guk, Willerth Stephanie M
Cells Tissues Organs. 2016;202(1-2):42-51. doi: 10.1159/000446474. Epub 2016 Oct 5.
Ongoing clinical trials are evaluating the use of stem cells as a way to treat traumatic spinal cord injury (SCI). However, the inhibitory environment present in the injured spinal cord makes it challenging to achieve the survival of these cells along with desired differentiation into the appropriate phenotypes necessary to regain function. Transplanting stem cells along with an instructive biomaterial scaffold can increase cell survival and improve differentiation efficiency. This study reviews the literature discussing different types of instructive biomaterial scaffolds developed for transplanting stem cells into the injured spinal cord. We have chosen to focus specifically on biomaterial scaffolds that direct the differentiation of neural stem cells and pluripotent stem cells since they offer the most promise for producing the cell phenotypes that could restore function after SCI. In terms of biomaterial scaffolds, this article reviews the literature associated with using hydrogels made from natural biomaterials and electrospun scaffolds for differentiating stem cells into neural phenotypes. It then presents new data showing how these different types of scaffolds can be combined for neural tissue engineering applications and provides directions for future studies.
正在进行的临床试验正在评估使用干细胞治疗创伤性脊髓损伤(SCI)的方法。然而,受损脊髓中存在的抑制性环境使得这些细胞的存活以及向恢复功能所需的适当表型进行理想分化变得具有挑战性。将干细胞与具有指导作用的生物材料支架一起移植可以提高细胞存活率并改善分化效率。本研究回顾了讨论为将干细胞移植到受损脊髓中而开发的不同类型具有指导作用的生物材料支架的文献。我们选择特别关注能够指导神经干细胞和多能干细胞分化的生物材料支架,因为它们最有希望产生在脊髓损伤后能够恢复功能的细胞表型。就生物材料支架而言,本文回顾了与使用由天然生物材料制成的水凝胶和电纺支架将干细胞分化为神经表型相关的文献。然后展示了新的数据,表明这些不同类型的支架如何能够结合用于神经组织工程应用,并为未来的研究提供了方向。