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首页> 外文期刊>Journal of biomedical materials research, Part A >Fiber/collagen composites for ligament tissue engineering: influence of elastic moduli of sparse aligned fibers on mesenchymal stem cells
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Fiber/collagen composites for ligament tissue engineering: influence of elastic moduli of sparse aligned fibers on mesenchymal stem cells

机译:用于韧带组织工程的纤维/胶原复合材料:稀疏排列的纤维的弹性模量对间充质干细胞的影响

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Electrospun microfibers are attractive for the engineering of oriented tissues because they present instructive topographic and mechanical cues to cells. However, high-density microfiber networks are too cell-impermeable for most tissue applications. Alternatively, the distribution of sparse microfibers within a three-dimensional hydrogel could present instructive cues to guide cell organization while not inhibiting cell behavior. In this study, thin (approximate to 5 fibers thick) layers of aligned microfibers (0.7 m) were embedded within collagen hydrogels containing mesenchymal stem cells (MSCs), cultured for up to 14 days, and assayed for expression of ligament markers and imaged for cell organization. These microfibers were generated through the electrospinning of polycaprolactone (PCL), poly(ester-urethane) (PEUR), or a 75/25 PEUR/PCL blend to produce microfiber networks with elastic moduli of 31, 15, and 5.6 MPa, respectively. MSCs in composites containing 5.6 MPa fibers exhibited increased expression of the ligament marker scleraxis and the contractile phenotype marker -smooth muscle actin versus the stiffer fiber composites. Additionally, cells within the 5.6 MPa microfiber composites were more oriented compared to cells within the 15 and 31 MPa microfiber composites. Together, these data indicate that the mechanical properties of microfiber/collagen composites can be tuned for the engineering of ligament and other target tissues. (c) 2016 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 104A: 1894-1901, 2016.
机译:电纺超细纤维对定向组织的工程具有吸引力,因为它们为细胞提供了有益的地形和机械提示。但是,对于大多数组织应用而言,高密度超细纤维网络对细胞来说是不可渗透的。或者,稀疏微纤维在三维水凝胶中的分布可能会提供指导性提示,以指导细胞组织,而不会抑制细胞行为。在这项研究中,将对齐的超细纤维(约0.7 m)的薄层(约5根纤维厚)嵌入含有间充质干细胞(MSC)的胶原水凝胶中,培养长达14天,并检测韧带标记物的表达并成像。单元组织。这些微纤维是通过聚己内酯(PCL),聚(酯-氨基甲酸酯)(PEUR)或75/25 PEUR / PCL共混物的电纺丝产生的,以产生弹性模量分别为31、15和5.6 MPa的微纤维网络。含有5.6 MPa纤维的复合材料中的MSC与较硬的纤维复合材料相比,韧带标志物的硬化性和收缩表型标志物-平滑肌肌动蛋白的表达增加。此外,与15和31 MPa超细纤维复合材料内的单元相比,5.6 MPa超细纤维复合材料内的单元更加定向。总之,这些数据表明,微纤维/胶原蛋白复合材料的机械性能可以针对韧带和其他目标组织的工程进行调整。 (c)2016 Wiley Periodicals,Inc.J Biomed Mater Res Part A:104A:1894-1901,2016年。

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