Smolinska Veronika, Harsanyi Stefan, Bohac Martin, Danisovic Lubos
Institute of Medical Biology, Genetics and Clinical Genetics, Faculty of Medicine, Comenius University in Bratislava, Sasinkova 4, 811 08 Bratislava, Slovakia.
Regenmed Ltd., Medena 29, 811 02 Bratislava, Slovakia.
Biomedicines. 2023 Dec 25;12(1):52. doi: 10.3390/biomedicines12010052.
To more accurately replicate the in vivo three-dimensional (3D) mesenchymal stem cell (MSC) niche and enhance cellular phenotypes for superior in vivo treatments, MSC functionalization through in vitro 3D culture approaches has gained attention. The organization of MSCs in 3D spheroids results in altered cell shape, cytoskeleton rearrangement, and polarization. Investigations have revealed that the survival and secretory capability of MSCs are positively impacted by moderate hypoxia within the inner zones of MSC spheroids. The spheroid hypoxic microenvironment enhances the production of angiogenic and anti-apoptotic molecules, including HGF, VEGF, and FGF-2. Furthermore, it upregulates the expression of hypoxia-adaptive molecules such as CXCL12 and HIF-1, inhibiting MSC death. The current review focuses on the latest developments in fundamental and translational research concerning three-dimensional MSC systems. This emphasis extends to the primary benefits and potential applications of MSC spheroids, particularly in the context of breast cancer and customized regenerative therapies.
为了更准确地复制体内三维(3D)间充质干细胞(MSC)微环境,并增强细胞表型以实现更优的体内治疗效果,通过体外3D培养方法对MSC进行功能化已受到关注。MSC在3D球体中的组织导致细胞形状改变、细胞骨架重排和极化。研究表明,MSC球体内部区域的适度缺氧对MSC的存活和分泌能力有积极影响。球体缺氧微环境增强了血管生成和抗凋亡分子的产生,包括HGF、VEGF和FGF-2。此外,它上调了CXCL12和HIF-1等缺氧适应分子的表达,抑制MSC死亡。本综述重点关注三维MSC系统基础研究和转化研究的最新进展。这种关注还延伸到MSC球体的主要益处和潜在应用,特别是在乳腺癌和定制再生疗法的背景下。