Hao Jin, Chen Ying, Zhu Mingjian, Zhao Yingqing, Zhang Kai, Xu Xia
Biochemical Engineering Research Center, Anhui University of Technology, Ma'anshan 243002, China.
School of Chemistry and Chemical Engineering, Anhui University of Technology, Ma'anshan 243002, China.
Gels. 2023 Apr 12;9(4):324. doi: 10.3390/gels9040324.
One approach to cell expansion is to use large hydrogel for growing a large number of cells. Nanofibrillar cellulose (NFC) hydrogel has been used for human induced pluripotent stem cell (hiPSCs) expansion. However, little is known about the status of hiPSCs at the single cell level inside large NFC hydrogel during culture. To understand the effect of NFC hydrogel property on temporal-spatial heterogeneity, hiPSCs were cultured in 0.8 wt% NFC hydrogel with different thicknesses with the top surface exposed to the culture medium. The prepared hydrogel exhibits less restriction in mass transfer due to the presence of macropores and micropores interconnecting the macropores. More than 85% of cells at different depths survive after 5 days of culture inside 3.5 mm thick hydrogel. Biological compositions at different zones inside the NFC gel were examined over time at a single-cell level. A dramatic concentration gradient of growth factors estimated in the simulation along 3.5 mm NFC hydrogel could be a reason for the spatial-temporal heterogeneity in protein secondary structure and protein glycosylation and pluripotency loss at the bottom zone. pH change caused by the lactic acid accumulation over time leads to changes in cellulose charge and growth factor potential, probably another reason for the heterogeneity in biochemical compositions. This study may help to develop optimal conditions for producing high-quality hiPSCs in large nanofibrillar cellulose hydrogel at scale.
一种细胞扩增的方法是使用大型水凝胶来培养大量细胞。纳米纤维纤维素(NFC)水凝胶已被用于人类诱导多能干细胞(hiPSC)的扩增。然而,对于培养过程中大型NFC水凝胶内单个细胞水平的hiPSC状态知之甚少。为了了解NFC水凝胶特性对时空异质性的影响,将hiPSC培养在不同厚度的0.8 wt% NFC水凝胶中,其顶面暴露于培养基中。制备的水凝胶由于存在大孔以及相互连接大孔的微孔,在传质方面表现出较小的限制。在3.5毫米厚的水凝胶中培养5天后,不同深度超过85%的细胞存活。在单细胞水平上,随着时间的推移对NFC凝胶内不同区域的生物成分进行了检测。模拟估计在3.5毫米NFC水凝胶中沿着生长因子存在显著的浓度梯度,这可能是底部区域蛋白质二级结构、蛋白质糖基化和多能性丧失时空异质性的一个原因。随着时间的推移,乳酸积累导致的pH变化会导致纤维素电荷和生长因子潜力的变化,这可能是生化成分异质性的另一个原因。这项研究可能有助于开发在大型纳米纤维纤维素水凝胶中大规模生产高质量hiPSC的最佳条件。