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Modulation of osteogenic, adipogenic and myogenic differentiation of mesenchymal stem cells by submicron grooved topography

机译:亚微米沟槽形貌对间充质干细胞成骨,成脂和成肌分化的调节

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摘要

Topographic cues have been recognized crucial on the modulation of cell behavior, and subsequent important for the design of implants, cell-based biomedical devices and tissue-engineered products. Grooved topography direct cells to align anisotropically on the substrates, resulting in an obvious morphological difference compared with the flat and the other topographies. This study aimed at investigating the effects of grooved topography on the differentiation of mesenchymal stem cells (MSCs) into osteoblasts, adipocytes and myoblasts. A series of submi-cron-grooved polystyrene substrates with equal groove-to-ridge ratio but different width and depth (width/depth (nm): 450/100, 450/350, 900/100, and 900/550) were fabricated based on electron beam lithography and soft lithography techniques. Primary rat MSCs (rMSCs) were cultured on these substrates without induction for differentiation for 6 days, and then subjected to induction for osteogenesis, adipogenesis and myogenesis. While the alignment of rMSCs strongly complied with the direction of the grooves and increased with groove depths, cell attachment on day 1 (~1.5 × 104/cm~2) and cell proliferation after 6 days of culture (~5 × 104/cm~2) were not significantly affected by substrate types. Osteogenesis, indicated by alkaline phosphatase activities and calcium deposit, was not significantly modulated by the grooved substrates, compared with the flat control, suggesting that cell alignment may not determine osteoinduction of rMSCs. On the other hand, adipogenesis, indicated by lipid production, was significantly enhanced by the grooved substrates compared with the flat surface (P < 0.001). On the other hand, myogenesis, indicated by desmin and MHC staining, was enhanced by the grooves in a time- and groove size-dependent manner compared with the flat control. The results suggested that grooved topography has an in-depth potential for modulating the commitment of the stem cell lineages, which could benefit the development of advanced biomaterials for biomedical applications.
机译:地形线索对细胞行为的调节至关重要,随后对植入物,基于细胞的生物医学装置和组织工程产品的设计也很重要。槽形地形引导细胞在基板上各向异性排列,与平坦形和其他形貌相比,导致明显的形态差异。这项研究旨在调查沟槽形貌对间充质干细胞(MSCs)分化为成骨细胞,脂肪细胞和成肌细胞的影响。制作了一系列具有亚沟槽形的聚苯乙烯基板,它们具有相同的槽脊比,但宽度和深度(宽度/深度(nm):450 / 100、450 / 350、900 / 100和900/550)不同基于电子束光刻和软光刻技术。在没有诱导分化的情况下,在这些底物上培养原代大鼠MSC(rMSC)6天,然后进行诱导以诱导成骨,成脂和成肌。 rMSCs的排列与槽的方向密切相关,并随槽的深度增加而增加,第1天的细胞附着(〜1.5×104 / cm〜2)和培养6天后的细胞增殖(〜5×104 / cm〜 2)不受底物类型的明显影响。与平坦对照组相比,碱性磷酸酶活性和钙沉积所指示的成骨作用并未受到带凹槽的底物的显着调节,这表明细胞排列可能不能决定rMSC的骨诱导。另一方面,与平坦表面相比,带凹槽的底物显着增强了以脂质产生为代表的脂肪生成(P <0.001)。另一方面,与平直对照相比,由结节和MHC染色指示的肌形成通过时间和凹槽尺寸依赖性的方式由凹槽增强。结果表明,沟槽形地形学具有调节干细胞谱系承诺的深入潜力,这可能有益于生物医学应用的先进生物材料的开发。

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  • 来源
    《Journal of materials science》 |2012年第12期|3015-3028|共14页
  • 作者单位

    Department of Chemical Engineering, National Taiwan University, No. 1, Roosevelt Rd., Sec. 4, Taipei 106, Taiwan;

    Department of Biomedical Engineering, Chung Yuan Christian University, No. 200, Chung Pei Rd., Chung Li 32023, Taiwan;

    Department of Chemical Engineering, National Taiwan University, No. 1, Roosevelt Rd., Sec. 4, Taipei 106, Taiwan;

    Department of Chemical Engineering, National Taiwan University, No. 1, Roosevelt Rd., Sec. 4, Taipei 106, Taiwan;

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