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Characterization of the growth modulatory activities of osteoblast conditioned media on cord blood progenitor cells

机译:成骨细胞条件培养基对脐血祖细胞生长调节活性的表征

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Engraftment outcomes are strongly correlated with the numbers of hematopoietic stem and progenitor cells (HSPC) infused. Expansion of umbilical cord blood (CB) HSPC has gained much interest lately since infusion of expanded HSPC can accelerate engraftment and improve clinical outcomes. Many novel protocols based on different expansion strategies of HSPC and their downstream derivatives are under development. Herein, we describe the production and properties of serum-free medium (SFM) conditioned with mesenchymal stromal cells derived-osteoblasts (OCM) for the expansion of umbilical CB cells and progenitors. After optimization of the conditioning length, we show that OCM increased the production of human CB total nucleated cells and CD34+ cells by 1.8-fold and 1.5-fold over standard SFM, respectively. Production of immature CD34+ subpopulations enriched in hematopoietic stem cells was also improved with a shorter conditioning period. Moreover, we show that the growth modulatory activities of OCM on progenitor expansion are regulated by both soluble factors and non-soluble cellular elements. Finally, the growth and differentiation modulatory activities of OCM were fully retained after high dose-ionizing irradiation and highly stable when OCM is stored frozen. In summary, our results suggest that OCM efficiently mimics some of the natural regulatory activities of osteoblasts on HSPC and highlight the marked expansion potentials of SFM conditioned with osteoblasts.
机译:植入的结果与注入的造血干细胞和祖细胞(HSPC)的数量密切相关。最近,脐带血(CB)的扩增引起了人们的极大兴趣,因为输注膨胀的HSPC可以加速植入并改善临床结果。许多基于HSPC及其下游衍生产品的不同扩展策略的新颖协议正在开发中。本文中,我们描述了以间充质基质细胞衍生成骨细胞(OCM)为条件的无血清培养基(SFM)的生产和特性,该培养基用于脐带CB细胞和祖细胞的扩增。优化条件长度后,我们显示OCM可使人CB总有核细胞和CD34 +细胞的产量分别比标准SFM增加1.8倍和1.5倍。通过缩短条件周期,还可以提高富含造血干细胞的未成熟CD34 +亚群的产量。此外,我们表明,OCM对祖细胞扩增的生长调节活性受可溶性因子和非可溶性细胞因子的调节。最后,在高剂量电离辐射后,OCM的生长和分化调节活性得以完全保留,而当OCM冷冻保存时,OCM的生长和分化调节活性则高度稳定。总而言之,我们的结果表明,OCM有效地模仿了成骨细胞对HSPC的某些自然调节活性,并突出了以成骨细胞为条件的SFM的显着扩展潜力。

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