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首页> 外文期刊>Journal of Functional Biomaterials >Characterization of Tensile Mechanical Behavior of MSCs/PLCL Hybrid Layered Sheet
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Characterization of Tensile Mechanical Behavior of MSCs/PLCL Hybrid Layered Sheet

机译:MSCs / PLCL混杂层板的拉伸力学行为表征

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A layered construct was developed by combining a porous polymer sheet and a cell sheet as a tissue engineered vascular patch. The primary objective of this study is to investigate the influence of mesenchymal stem cells (MSCs) sheet on the tensile mechanical properties of porous poly-( l -lactide-co-ε-caprolactone) (PLCL) sheet. The porous PLCL sheet was fabricated by the solid-liquid phase separation method and the following freeze-drying method. The MSCs sheet, prepared by the temperature-responsive dish, was then layered on the top of the PLCL sheet and cultured for 2 weeks. During the in vitro study, cellular properties such as cell infiltration, spreading and proliferation were evaluated. Tensile test of the layered construct was performed periodically to characterize the tensile mechanical behavior. The tensile properties were then correlated with the cellular properties to understand the effect of MSCs sheet on the variation of the mechanical behavior during the in vitro study. It was found that MSCs from the cell sheet were able to migrate into the PLCL sheet and actively proliferated into the porous structure then formed a new layer of MSCs on the opposite surface of the PLCL sheet. Mechanical evaluation revealed that the PLCL sheet with MSCs showed enhancement of tensile strength and strain energy density at the first week of culture which is characterized as the effect of MSCs proliferation and its infiltration into the porous structure of the PLCL sheet. New technique was presented to develop tissue engineered patch by combining MSCs sheet and porous PLCL sheet, and it is expected that the layered patch may prolong biomechanical stability when implanted in vivo .
机译:通过将多孔聚合物片和细胞片结合在一起作为组织工程化的血管贴片来开发分层构造。这项研究的主要目的是研究间充质干细胞(MSCs)片对多孔聚(1-丙交酯-ε-己内酯)(PLCL)片的拉伸力学性能的影响。通过固-液相分离法和以下的冷冻干燥法制造PLCL多孔板。然后,将由温度响应皿制备的MSCs薄片铺在PLCL薄片的顶部,并培养2周。在体外研究过程中,评估了细胞特性,例如细胞浸润,扩散和增殖。定期进行分层结构的拉伸试验以表征拉伸机械性能。然后将拉伸性能与细胞性能相关联,以了解MSCs片在体外研究过程中对机械性能变化的影响。发现来自细胞片的MSC能够迁移到PLCL片中并活跃地增殖到多孔结构中,然后在PLCL片的相反表面上形成新的MSC层。力学评估表明,带有MSCs的PLCL片在培养的第一周显示出抗张强度和应变能密度的增强,其特征在于MSCs的增殖及其渗透到PLCL片的多孔结构中的作用。提出了通过结合MSCs片和多孔PLCL片来开发组织工程贴片的新技术,并期望当在体内植入时,分层贴片可以延长生物力学稳定性。

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