Banerjee Akhilesh, Arha Manish, Choudhary Soumitra, Ashton Randolph S, Bhatia Surita R, Schaffer David V, Kane Ravi S
The Howard P. Isermann Department of Chemical and Biological Engineering, Rensselaer Polytechnic Institute, Troy, NY 12180, USA.
Biomaterials. 2009 Sep;30(27):4695-9. doi: 10.1016/j.biomaterials.2009.05.050. Epub 2009 Jun 17.
There has been an increasing interest in understanding how the mechanical properties of the microenvironment influence stem cell fate. We describe studies of the proliferation and differentiation of neural stem cells (NSCs) encapsulated within three-dimensional scaffolds--alginate hydrogels--whose elastic moduli were varied over two orders of magnitude. The rate of proliferation of neural stem cells decreased with increase in the modulus of the hydrogels. Moreover, we observed the greatest enhancement in expression of the neuronal marker beta-tubulin III within the softest hydrogels, which had an elastic modulus comparable to that of brain tissues. To our knowledge, this work represents the first demonstration of the influence of modulus on NSC differentiation in three-dimensional scaffolds. Three-dimensional scaffolds that control stem cell fate would be broadly useful for applications in regenerative medicine and tissue engineering.
人们对了解微环境的力学特性如何影响干细胞命运的兴趣与日俱增。我们描述了对包裹在三维支架——藻酸盐水凝胶中的神经干细胞(NSCs)增殖和分化的研究,这些水凝胶的弹性模量在两个数量级范围内变化。神经干细胞的增殖速率随着水凝胶模量的增加而降低。此外,我们在最软的水凝胶中观察到神经元标志物β-微管蛋白III表达的最大增强,其弹性模量与脑组织相当。据我们所知,这项工作首次证明了模量对三维支架中神经干细胞分化的影响。控制干细胞命运的三维支架在再生医学和组织工程应用中将具有广泛的用途。