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Bioreactor strategy in bone tissue engineering: Pre-culture and osteogenic differentiation under two flow configurations

机译:骨组织工程中的生物反应器策略:两种流动配置下的预培养和成骨分化

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Since robust osteogenic differentiation and mineralization are integral to the engineering of bone constructs, understanding the impact of the cellular microenvironments on human mesenchymal stem cell (hMSCs) osteogenic differentiation is crucial to optimize bioreactor strategy. Two perfusion flow conditions were utilized in order to understand the impact of the flow configuration on hMSC construct development during both pre-culture (PC) in growth media and its subsequent osteogenic induction (OI). The media in the in-house perfusion bioreactor was controlled to perfuse either around (termed parallel flow [PF]) the construct surfaces or penetrate through the construct (termed transverse flow [TF]) for 7 days of the PC followed by 7 days of the OI. The flow configuration during the PC not only changed growth kinetics but also influenced cell distribution and potency of osteogenic differentiation and mineralization during the subsequent OI. While shear stress resulted from the TF stimulated cell proliferation during PC, the convective removal of de novo extracellular matrix (ECM) proteins and growth factors (GFs) reduced cell proliferation on OI. In contrast, the effective retention of de novo ECM proteins and GFs in the PC constructs under the PF maintained cell proliferation under the OI but resulted in localized cell aggregations, which influenced their osteogenic differentiation. The results revealed the contrasting roles of the convective flow as a mechanical stimulus, the redistribution of the cells and macromolecules in 3D constructs, and their divergent impacts on cellular events, leading to bone construct formation. The results suggest that the modulation of the flow configuration in the perfusion bioreactor is an effective strategy that regulates the construct properties and maximizes the functional outcome.
机译:由于强大的成骨分化和矿化作用是骨骼构造工程不可或缺的组成部分,因此了解细胞微环境对人间充质干细胞(hMSCs)成骨分化的影响对于优化生物反应器策略至关重要。为了了解流动配置对生长培养基中预培养(PC)及其随后的成骨诱导(OI)期间hMSC构建体发育的影响,使用了两种灌注流动条件。控制室内灌注生物反应器中的介质灌注PC的7天(称为平行流[PF]),或穿透PC的7天(称为横向流[TF]),然后灌注7天。 OI。 PC中的流动构型不仅改变了生长动力学,而且还影响了细胞分布以及随后的OI中成骨分化和矿化的能力。尽管TF刺激PC时细胞产生了剪应力,但对流清除细胞外基质(ECM)蛋白质和生长因子(GFs)却减少了OI细胞的增殖。相反,在PF下PC构建物中从头ECM蛋白和GF的有效保留在OI下维持了细胞增殖,但导致了局部细胞聚集,这影响了它们的成骨分化。结果揭示了对流作为机械刺激的相反作用,细胞和大分子在3D构造中的重新分布,以及它们对细胞事件的不同影响,导致骨骼构造的形成。结果表明,在灌注生物反应器中流动配置的调节是一种有效的策略,其调节构建体的性质并使功能结果最大化。

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