Laboratory of Cell-Based Assays and Innovations, School of Biotechnology, Institute of Agricultural Technology, Suranaree University of Technology, 111 University Avenue, Nakhon Ratchasima, 30000, Thailand.
Sci Rep. 2024 Feb 23;14(1):4436. doi: 10.1038/s41598-024-54912-1.
The three-dimensional (3D) cell culture system is being employed more frequently to investigate cell engineering and tissue repair due to its close mimicry of in vivo microenvironments. In this study, we developed natural biomaterials, including hyaluronic acid, alginate, and gelatin, to mimic the creation of a 3D human mesenchymal stem cell (hMSC) extracellular environment and selected hydrogels with high proliferation capacity for 3D MSC culture. Human mesenchymal stem cells were encapsulated within hydrogels, and an investigation was conducted into the effects on cell viability and proliferation, stemness properties, and telomere activity compared to the 2D monolayer culture. Hydrogel characterization, cell proliferation, Live/Dead cell viability assay, gene expression, telomere relative length, and MSC stemness-related proteins by immunofluorescence staining were examined. The results showed that 3D alginate-hyaluronic acid (AL-HA) hydrogels increased cell proliferation, and the cells were grown as cellular spheroids within hydrogels and presented a high survival rate of 77.36% during the culture period of 14 days. Furthermore, the 3D alginate-hyaluronic acid (AL-HA) hydrogels increased the expression of stemness-related genes (OCT-4, NANOG, SOX2, and SIRT1), tissue growth and development genes (YAP and TAZ), and cell proliferation gene (Ki67) after culture for 14 days. Moreover, the telomere activity of the 3D MSCs was enhanced, as indicated by the upregulation of the human telomerase reverse transcriptase gene (hTERT) and the relative telomere length (T/S ratio) compared to the 2D monolayer culture. Altogether, these data suggest that the 3D alginate-hyaluronic acid (AL-HA) hydrogels could serve as a promising material for maintaining stem cell properties and might be a suitable carrier for tissue engineering proposals.
三维(3D)细胞培养系统由于更接近体内微环境,因此越来越多地被用于研究细胞工程和组织修复。在这项研究中,我们开发了天然生物材料,包括透明质酸、海藻酸钠和明胶,以模拟 3D 人间充质干细胞(hMSC)细胞外环境,并选择了增殖能力高的水凝胶用于 3D MSC 培养。人骨髓间充质干细胞被包封在水凝胶中,并研究了与 2D 单层培养相比,对细胞活力和增殖、干细胞特性和端粒活性的影响。通过水凝胶特性分析、细胞增殖、Live/Dead 细胞活力测定、基因表达、端粒相对长度和免疫荧光染色的 MSC 干性相关蛋白来评估。结果表明,3D 藻酸盐-透明质酸(AL-HA)水凝胶增加了细胞增殖,细胞在水凝胶中生长为细胞球,并在 14 天的培养期间保持了 77.36%的高存活率。此外,3D 藻酸盐-透明质酸(AL-HA)水凝胶在培养 14 天后增加了干细胞相关基因(OCT-4、NANOG、SOX2 和 SIRT1)、组织生长和发育基因(YAP 和 TAZ)以及细胞增殖基因(Ki67)的表达。此外,3D MSC 的端粒活性增强,这表现为人类端粒酶逆转录酶基因(hTERT)的上调和相对端粒长度(T/S 比)与 2D 单层培养相比。总的来说,这些数据表明 3D 藻酸盐-透明质酸(AL-HA)水凝胶可以作为维持干细胞特性的有前途的材料,并可能成为组织工程方案的合适载体。