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首页> 外文期刊>Biotechnology Progress >Regulation of Autocrine Fibroblast Growth Factor-2 Signaling by Perfusion Flow in 3D Human Mesenchymal Stem Cell Constructs
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Regulation of Autocrine Fibroblast Growth Factor-2 Signaling by Perfusion Flow in 3D Human Mesenchymal Stem Cell Constructs

机译:通过3D人间充质干细胞构建物中的灌注流对自分泌成纤维细胞生长因子2信号的调节

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摘要

Perfusion bioreactor systems play a crucial role in mitigating nutrient limitation as well as providing biomechanical stimuli and redistributing regulatory macromolecules that influence human mesenchymal stem cells (hMSC) fate in three-dimensional (3D) scaffolds. As fibroblast growth factor-2 (FGF-2) is known to regulate hMSC phenotype, understanding the role of autocrine FGF-2 signaling in the 3D construct under the different perfusion flow provides important insight into an optimal bioreactor design. To investigate FGF-2 signaling inhibition in hMSC cultured in the porous poly(ethylene terephthalate) (PET) scaffolds perfused under two flow configurations, PD173074, an FGFR1 inhibitor, was added in growth media after 7 day of pre-culture and its impact on hMSC proliferation and clonoge-nicity during the subsequent 7 days of cultivation was analyzed. Compared with control constructs in growth media, the addition of PD173074 resulted in significant reduction in hMSC proliferation and colony formation in both constructs with a more dramatic reduction in the parallel flow constructs. The results demonstrate that autocrine FGF-2 plays a significant role in 3D scaffold and suggest modulation of the perfusion flow in the bioreactor as a strategy to influence autocrine actions and cell fate in the 3D scaffold.
机译:灌注生物反应器系统在减轻营养限制以及提供生物力学刺激和重新分配调节大分子方面起着至关重要的作用,这些大分子影响三维(3D)支架中的人类间充质干细胞(hMSC)的命运。由于已知成纤维细胞生长因子2(FGF-2)调节hMSC表型,了解自分泌FGF-2信号在不同灌注流下在3D构建物中的作用可为优化生物反应器设计提供重要见解。为了研究在两种流动配置下灌注的多孔聚对苯二甲酸乙二醇酯(PET)支架中培养的hMSC中FGF-2信号转导的抑制作用,预培养7天后在生长培养基中添加了PD173074(一种FGFR1抑制剂)及其对在随后的7天培养过程中,分析了hMSC的增殖和克隆性。与生长培养基中的对照构建体相比,PD173074的添加导致两种构建体中hMSC增殖和集落形成的显着减少,而平行流构建体的减少更为明显。结果表明自分泌FGF-2在3D支架中起重要作用,并建议调节生物反应器中的灌注流,作为影响3D支架中自分泌作用和细胞命运的策略。

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