Cell Sheet Tissue Engineering Center (CSTEC), University of Utah, Salt Lake City, Utah, USA.
Department of Molecular Pharmaceutics, Health Sciences, University of Utah, 30 South 2000 East, Salt Lake City, Utah, 84112, USA.
Sci Rep. 2023 Mar 17;13(1):4421. doi: 10.1038/s41598-023-31437-7.
Allogeneic "off-the-shelf" mesenchymal stem/stromal cell (MSC) therapy requires scalable, quality-controlled cell manufacturing and distribution systems to provide clinical-grade products using cryogenic cell banking. However, previous studies report impaired cell function associated with administering freeze-thawed MSCs as single cell suspensions, potentially compromising reliable therapeutic efficacy. Using long-term culture-adapted clinical-grade clonal human bone marrow MSCs (cBMSCs) in this study, we engineered cBMSC sheets in 24 h to provide rapid preparation. We then sought to determine the influence of cBMSC freeze-thawing on both in vitro production of pro-regenerative factors and in vivo ability to reduce renal fibrosis in a rat model compared to freshly harvested cBMSCs. Sheets from freeze-thawed cBMSCs sheets exhibited comparable in vitro protein production and gene expression of pro-regenerative factors [e.g., hepatocyte growth factor (HGF), vascular endothelial growth factor (VEGF), and interleukin 10 (IL-10)] to freshly harvested cBMSC sheets. Additionally, freeze-thawed cBMSC sheets successfully suppressed renal fibrosis in vivo in an established rat ischemia-reperfusion injury model. Despite previous studies reporting that freeze-thawed MSCs exhibit impaired cell functions compared to fresh MSC single cell suspensions, cell sheets engineered from freeze-thawed cBMSCs do not exhibit impaired cell functions, supporting critical steps toward future clinical translation of cBMSC-based kidney disease treatment.
同种异体“现成”间充质干细胞(MSC)治疗需要可扩展的、质量控制的细胞制造和分配系统,以使用低温细胞储存提供临床级产品。然而,先前的研究报告表明,与作为单细胞悬浮液给药的冻融 MSC 相关的细胞功能受损,可能会影响可靠的治疗效果。在这项研究中,我们使用经过长期培养适应的临床级克隆人骨髓间充质干细胞(cBMSCs),在 24 小时内工程化制造 cBMSC 片,以提供快速制备。然后,我们试图确定与新鲜收获的 cBMSCs 相比,cBMSC 冻融对体外产生促再生因子的影响以及在体内减少大鼠模型中肾纤维化的能力。与新鲜收获的 cBMSC 片相比,冻融 cBMSC 片表现出相当的体外蛋白产生和促再生因子的基因表达[例如,肝细胞生长因子(HGF)、血管内皮生长因子(VEGF)和白细胞介素 10(IL-10)]。此外,冻融的 cBMSC 片在已建立的大鼠缺血再灌注损伤模型中成功抑制了体内的肾纤维化。尽管先前的研究报告称与新鲜 MSC 单细胞悬浮液相比,冻融 MSC 表现出受损的细胞功能,但源自冻融 cBMSCs 的细胞片并未表现出受损的细胞功能,这为 cBMSC 治疗肾脏疾病的未来临床转化提供了关键步骤。