Institute of Physics, Czech Academy of Sciences, Na Slovance 1999/2, 182 21 Praha 8, Czech Republic.
Molecules. 2020 Jan 23;25(3):497. doi: 10.3390/molecules25030497.
In our work, we developed the synthesis of new polyfunctional pegylated trehalose derivatives and evaluated their cryoprotective effect using flow cytometry. We showed that new compounds (modified trehaloses) bound to appropriate extracellular polymeric cryoprotectants could be helpful as a chemical tool for the evaluation of their potential toxic cell membrane influences. Our aim was to form a chemical tool for the evaluation of cryoprotectant cell membrane influences, which are still not easily predicted during the freezing/thawing process. We combined two basic cryoprotectants: polyethyleneglycols (PEGs) and trehalose in the new chemical compounds-pegylated trehalose hybrids. If PEG and trehalose are chemically bound and trehalose is adsorbed on the cell surface PEGs molecules which are, due to the chemical bonding with trehalose, close to the cell surface, can remove the cell surface hydration layer which destabilizes the cell membrane. This was confirmed by the comparison of new material, PEG, trehalose, and their mixture cryoprotective capabilities.
在我们的工作中,我们开发了新的多功能聚乙二醇化海藻糖衍生物的合成,并使用流式细胞术评估了它们的冷冻保护作用。我们表明,与适当的细胞外聚合物冷冻保护剂结合的新化合物(修饰的海藻糖)可用作评估其潜在的有毒细胞膜影响的化学工具。我们的目的是形成一种化学工具,用于评估冷冻保护剂对细胞膜的影响,而在冷冻/解冻过程中,这种影响仍然不容易预测。我们将两种基本的冷冻保护剂:聚乙二醇(PEG)和海藻糖结合到新的化学化合物——聚乙二醇化海藻糖混合物中。如果 PEG 和海藻糖在化学上结合,并且海藻糖吸附在细胞表面上,由于与海藻糖的化学结合,靠近细胞表面的 PEG 分子可以去除使细胞膜不稳定的细胞表面水化层。这一点通过比较新材料、PEG、海藻糖及其混合物的冷冻保护能力得到了证实。