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Tubular perfusion system culture of human mesenchymal stem cells on poly-l-lactic acid scaffolds produced using a supercritical carbon dioxide-assisted process

机译:使用超临界二氧化碳辅助工艺生产的人间充质干细胞对人间充质干细胞的管状灌注系统培养

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摘要

In vitro human mesenchymal stem cell (hMSC) proliferation and differentiation is dependent on scaffold design parameters and specific culture conditions. In this study, we investigate how scaffold microstructure influences hMSC behavior in a perfusion bioreactor system. Poly-l-lactic acid (PLLA) scaffolds are fabricated using supercritical carbon dioxide (SC-CO2) gel drying. This production method results in scaffolds fabricated with nanostructure. To introduce a microporous structure, porogen leaching was used in addition to this technique to produce scaffolds of average pore size of 100, 250, and 500 µm. These scaffolds were then cultured in static culture in well plates or dynamic culture in the tubular perfusion system (TPS) bioreactor. Results indicated that hMSCs were able to attach and maintain viability on all scaffolds with higher proliferation in the 250 µm and 500 µm pore sizes of bioreactor cultured scaffolds and 100 µm pore size of statically cultured scaffolds. Osteoblastic differentiation was enhanced in TPS culture as compared to static culture with the highest alkaline phosphatase expression observed in the 250 µm pore size group. Bone morphogenetic protein-2 was also analyzed and expression levels were highest in the 250 µm and 500 µm pore size bioreactor cultured samples. These results demonstrate cellular response to pore size as well as the ability of dynamic culture to enhance these effects.
机译:体外人间充质干细胞(HMSC)增殖和分化取决于支架设计参数和特异性培养条件。在这项研究中,我们研究了支架微观结构如何影响灌注生物反应器系统中的HMSC行为。使用超临界二氧化碳(SC-CO2)凝胶干燥制造聚-L-乳酸(PLLA)支架。这种生产方法导致用纳米结构制造的支架。为了引入微孔结构,除了该技术之外,使用孔胶浸出,以产生平均孔径为100,250和500μm的支架。然后将这些支架培养在晶片灌注系统(TPS)生物反应器中的孔板或动态培养物中培养。结果表明,HMSCs能够在250μm和500μm的生物反应器培养的支架和500μm的孔径和500μm的孔径培养的支架和100μm孔径的静态培养支架上的所有支架上连接和维持活力。与250μm孔径组中观察到的最高碱性磷酸酶表达相比,TPS培养中提高了骨细胞分化。还分析了骨形态发生蛋白-2,并且在250μm和500μm的孔径生物反应器培养样品中表达水平最高。这些结果表明对孔径的细胞反应以及动态培养增强这些效果的能力。

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