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首页> 外文期刊>European Cells & Materials >Cyclic tensile strain enhances human mesenchymal stem cell Smad 2/3 activation and tenogenic differentiation in anisotropic collagen-glycosaminoglycan scaffolds
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Cyclic tensile strain enhances human mesenchymal stem cell Smad 2/3 activation and tenogenic differentiation in anisotropic collagen-glycosaminoglycan scaffolds

机译:循环拉伸应变增强各向异性胶原蛋白-糖胺聚糖支架中人间充质干细胞Smad 2/3的活化和向基因分化。

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Orthopaedic injuries, particularly those involving ligaments and tendons, are some of the most commonly treated ailments in the United States and are associated with both high costs and poor outcomes. Regenerative medicine strategies for tendon injuries could be enhanced by three-dimensional biomaterials that can promote cell alignment and pro-tenogenic differentiation of patient-derived MSCs. We have previously described a collagen-glycosaminoglycan (CG) scaffold possessing aligned structural features able to promote bone marrow MSC differentiation towards a tenogenic lineage, in the absence of growth factor supplementation. We aimed to employ a bioreactor to enhance MSC tenogenic differentiation within the aligned CG scaffold via cyclic tensile strain (CTS), and further to evaluate the relative effects of strain cycle duration and extended application of repeated cycles of CTS on MSC response. Human MSCs were cultured in CG scaffolds for up to 6 d under static (unloaded) or cyclic tensile strain (1 Hz) for 10 min every 6 h. Time-dependent activation of ERK 1/2 and p38 mechanotransduction pathways was observed within each 6 h strain cycle. MSCs remained viable throughout the experiment and application of CTS robustly upregulated the expression of tendon-specific extracellular matrix proteins and phenotypic markers. Simultaneously, CTS promoted increased phosphorylation of Smad 2/3, suggesting a link between tensile stimulation and TGF-β family growth factor production. Together, we demonstrated the design, fabrication and validation of a high-throughput tensile stimulation bioreactor to increase MSC tenogenic differentiation in porous CG scaffolds.
机译:骨伤,特别是涉及韧带和肌腱的骨伤,在美国是最常被治疗的疾病,与高成本和不良结果相关。三维生物材料可以增强肌腱损伤的再生医学策略,这些生物材料可以促进患者源性MSC的细胞排列和促前体分化。我们之前已经描述了一种胶原蛋白-糖胺聚糖(CG)支架,该支架具有对齐的结构特征,能够在不添加生长因子的情况下促进骨髓MSC向腱鞘谱系分化。我们旨在采用生物反应器通过循环拉伸应变(CTS)增强对齐的CG支架内的MSC肌腱分化,并进一步评估应变周期持续时间和CTS重复周期对MSC反应的延长应用的相对影响。人MSC在CG支架中在静态(空载)或循环拉伸应变(1 Hz)下每6小时培养6分钟,持续培养6 d。在每个6小时的应变周期内观察到ERK 1/2和p38机械转导途径的时间依赖性激活。在整个实验过程中,MSC仍然是可行的,CTS的应用强烈上调了肌腱特异性细胞外基质蛋白和表型标记的表达。同时,CTS促进了Smad2 / 3的磷酸化增加,表明拉伸刺激与TGF-β家族生长因子产生之间存在联系。在一起,我们展示了高通量拉伸刺激生物反应器的设计,制造和验证,以增加多孔CG支架中的MSC肌腱分化。

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