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首页> 外文期刊>Tissue engineering, Part C. Methods >Biomimetic three-dimensional anisotropic geometries by uniaxial stretch of poly(ε-Caprolactone) films for mesenchymal stem cell proliferation, alignment, and myogenic differentiation
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Biomimetic three-dimensional anisotropic geometries by uniaxial stretch of poly(ε-Caprolactone) films for mesenchymal stem cell proliferation, alignment, and myogenic differentiation

机译:聚(ε-己内酯)膜的单轴拉伸仿生三维各向异性的几何形状,用于间充质干细胞的增殖,排列和成肌分化

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Anisotropic geometries are critical for eliciting cell alignment to dictate tissue microarchitectures and biological functions. Current fabrication techniques are complex and utilize toxic solvents, hampering their applications for translational research. Here, we present a novel simple, solvent-free, and reproducible method via uniaxial stretching for incorporating anisotropic topographies on bioresorbable films with ambitions to realize stem cell alignment control. Uniaxial stretching of poly(ε-caprolactone) (PCL) films resulted in a three-dimensional micro-ridge/groove topography (inter-ridge-distance: ~6 μm; ridge-length: ~90 μm; ridge-depth: 200-900 nm) with uniform distribution and controllable orientation by the direction of stretch on the whole film surface. When stretch temperature (T s) and draw ratio (DR) were increased, the inter-ridge-distance was reduced and ridge-length increased. Through modification of hydrolysis, increased surface hydrophilicity was achieved, while maintaining the morphology of PCL ridge/grooves. Upon seeding human mesenchymal stem cells (hMSCs) on uniaxial-stretched PCL (UX-PCL) films, aligned hMSC organization was obtained. Compared to unstretched films, hMSCs on UX-PCL had larger increase in cellular alignment (85%) and elongation, without indication of cytotoxicity or reduction in cellular proliferation. This aligned hMSC organization was homogenous and stably maintained with controlled orientation along the ridges on the whole UX-PCL surface for over 2 weeks. Moreover, the hMSCs on UX-PCL had a higher level of myogenic genes' expression than that on the unstretched films. We conclude that uniaxial stretching has potential in patterning film topography with anisotropic structures. The UX-PCL in conjunction with hMSCs could be used as "basic units" to create tissue constructs with microscale control of cellular alignment and elongation for tissue engineering applications.
机译:各向异性的几何形状对于引发细胞排列以决定组织的微结构和生物学功能至关重要。当前的制造技术很复杂,并且使用有毒溶剂,从而妨碍了它们在转化研究中的应用。在这里,我们提出了一种新颖的简单,无溶剂且可重现的方法,该方法通过单轴拉伸将具有各向异性的形貌结合到生物可吸收膜上,以实现干细胞排列控制。聚(ε-己内酯)(PCL)膜的单轴拉伸产生了三维微凸脊/沟槽形貌(凸脊间距:〜6μm;凸脊长度:〜90μm;凸脊深度:200- 900 nm),在整个薄膜表面上的拉伸方向具有均匀的分布和可控的取向。当拉伸温度(T s)和拉伸比(DR)增加时,脊间距离减小,而脊长增加。通过水解的改性,实现了增加的表面亲水性,同时保持了PCL脊/槽的形态。在单轴拉伸的PCL(UX-PCL)膜上播种人间充质干细胞(hMSCs)后,获得了对齐的hMSC组织。与未拉伸的薄膜相比,UX-PCL上的hMSC具有更大的细胞排列(> 85%)和伸长率增加,而没有细胞毒性或细胞增殖减少的迹象。这种对齐的hMSC组织是均匀的,并且沿着整个UX-PCL表面上的山脊保持受控的方向稳定取向超过2周。而且,UX-PCL上的hMSC比未拉伸膜上的成肌基因表达水平更高。我们得出结论,单轴拉伸在图案化具有各向异性结构的薄膜形貌方面具有潜力。 UX-PCL与hMSC结合可以用作“基本单位”,以组织控制细胞排列和伸长的微观结构来创建组织构建体,以用于组织工程应用。

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