Futrega Kathryn, Atkinson Kerry, Lott William B, Doran Michael R
1 Stem Cell Therapies Laboratory, Translational Research Institute, Queensland University of Technology , Brisbane, Australia .
2 Mater Research Institute - University of Queensland, Translational Research Institute , Brisbane, Australia .
Tissue Eng Part C Methods. 2017 Apr;23(4):200-218. doi: 10.1089/ten.tec.2016.0329.
While two-dimensional (2D) monolayers of mesenchymal stem/stromal cells (MSCs) have been shown to enhance hematopoietic stem/progenitor cell (HSPC) expansion in vitro, expanded cells do not engraft long term in human recipients. This outcome is attributed to the failure of 2D culture to recapitulate the bone marrow (BM) niche signal milieu. Herein, we evaluated the capacity of a novel three-dimensional (3D) coculture system to support HSPC expansion in vitro. A high-throughput polydimethylsiloxane (PDMS) microwell platform was used to manufacture thousands of uniform 3D multicellular coculture spheroids. Relative gene expression in 3D spheroid versus 2D adherent BM-derived MSC cultures was characterized and compared with literature reports. We evaluated coculture spheroids, each containing 25-400 MSCs and 10 umbilical cord blood (CB)-derived CD34 progenitor cells. At low exogenous cytokine concentrations, 2D and 3D MSC coculture modestly improved overall hematopoietic cell and CD34 cell expansion outcomes. By contrast, a substantial increase in CD34CD38 cell yield was observed in PDMS microwell cultures, regardless of the presence or absence of MSCs. This outcome indicated that CD34CD38 cell culture yield could be increased using the microwell platform alone, even without MSC coculture support. We found that the increase in CD34CD38 cell yield observed in PDMS microwell cultures did not translate to enhanced engraftment in NOD/SCID gamma (NSG) mice or a modification in the relative human hematopoietic lineages established in engrafted mice. In summary, there was no statistical difference in CD34 cell yield from 2D or 3D cocultures, and MSC coculture support provided only modest benefit in either geometry. While the high-throughput 3D microwell platform may provide a useful model system for studying cells in coculture, further optimization will be required to generate HSPC yields suitable for use in clinical applications.
虽然间充质干细胞(MSC)的二维(2D)单层细胞已被证明可在体外增强造血干/祖细胞(HSPC)的扩增,但扩增后的细胞无法在人类受体中长期植入。这一结果归因于二维培养无法重现骨髓(BM)微环境信号环境。在此,我们评估了一种新型三维(3D)共培养系统在体外支持HSPC扩增的能力。使用高通量聚二甲基硅氧烷(PDMS)微孔平台制造了数千个均匀的三维多细胞共培养球体。对三维球体与二维贴壁的BM来源的MSC培养物中的相对基因表达进行了表征,并与文献报道进行了比较。我们评估了共培养球体,每个球体包含25 - 400个MSC和10个脐带血(CB)来源的CD34祖细胞。在低外源性细胞因子浓度下,二维和三维MSC共培养适度改善了总体造血细胞和CD34细胞的扩增结果。相比之下,无论是否存在MSC,在PDMS微孔培养物中均观察到CD34CD38细胞产量大幅增加。这一结果表明,即使没有MSC共培养支持,仅使用微孔平台也可提高CD34CD38细胞培养产量。我们发现,在PDMS微孔培养物中观察到的CD34CD38细胞产量增加并未转化为在NOD/SCIDγ(NSG)小鼠中增强的植入能力,也未改变植入小鼠中建立的相对人类造血谱系。总之,二维或三维共培养的CD34细胞产量没有统计学差异,并且MSC共培养支持在两种培养形式中仅提供了适度的益处。虽然高通量三维微孔平台可能为研究共培养中的细胞提供有用的模型系统,但仍需要进一步优化以产生适用于临床应用的HSPC产量。