Golan Martin, Jelinkova Sarka, Kratochvílová Irena, Skládal Petr, Pešl Martin, Rotrekl Vladimír, Pribyl Jan
Department of Analysis of Functional Materials, Institute of Physics, Academy of Sciences Czech Republic, Prague, Czechia.
Department of Biology, Faculty of Medicine, Masaryk University, Brno, Czechia.
Front Physiol. 2018 Jun 29;9:804. doi: 10.3389/fphys.2018.00804. eCollection 2018.
Cryopreservation of cells (mouse embryonic fibroblasts) is a fundamental task for wide range of applications. In practice, cells are protected against damage during freezing by applications of specific cryoprotectants and freezing/melting protocols. In this study by using AFM and fluorescence microscopy we showed how selected cryoprotectants (dimethyl sulfoxide and polyethylene glycol) affected the cryopreserved cells mechanical properties (stiffness) and how these parameters are correlated with cytoskeleton damage and reconstruction. We showed how cryopreserved (frozen and thawed) cells' stiffness change according to type of applied cryoprotectant and its functionality in extracellular or intracellular space. We showed that AFM can be used as technique for investigation of cryopreserved cells surfaces state and development . Our results offer a new perspective on the monitoring and characterization of frozen cells recovery by measuring changes in elastic properties by nanoindentation technique. This may lead to a new and detailed way of investigating the post-thaw development of cryopreserved cells which allows to distinguish between different cell parts.
细胞(小鼠胚胎成纤维细胞)的冷冻保存是广泛应用中的一项基本任务。在实践中,通过应用特定的冷冻保护剂和冷冻/融化方案来保护细胞在冷冻过程中免受损伤。在本研究中,我们使用原子力显微镜(AFM)和荧光显微镜展示了选定的冷冻保护剂(二甲基亚砜和聚乙二醇)如何影响冷冻保存细胞的力学性能(硬度),以及这些参数如何与细胞骨架损伤和重建相关。我们展示了根据所应用的冷冻保护剂类型及其在细胞外或细胞内空间的功能,冷冻保存(冻融)细胞的硬度如何变化。我们表明AFM可作为研究冷冻保存细胞表面状态和发育的技术。我们的结果通过纳米压痕技术测量弹性性能的变化,为监测和表征冷冻细胞的恢复提供了新的视角。这可能会带来一种全新且详细的研究冷冻保存细胞解冻后发育的方法,从而能够区分不同的细胞部分。