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Slow Freezing Coupled Static Magnetic Field Exposure Enhances Cryopreservative Efficiency—A Study on Human Erythrocytes

机译:人类红细胞慢冻再加静磁场暴露提高低温防护剂效率 - 研究

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摘要

The aim of this study was to assess the cryoprotective effect of static magnetic fields (SMFs) on human erythrocytes during the slow cooling procedure. Human erythrocytes suspended in 20% glycerol were slowly frozen with a 0.4-T or 0.8-T SMF and then moved to a −80°C freezer for 24 hr. The changes in survival rate, morphology, and metabolites of the thawed erythrocytes were examined. To understand possible cryoprotective mechanisms of SMF, membrane fluidity and dehydration stability of SMF-exposed erythrocytes were tested. For each test, sham-exposed erythrocytes were used as controls. Our results showed that freezing coupled with 0.4-T or 0.8-T SMFs significantly increased the relative survival ratios of the frozen-thawed erythrocytes by 10% and 20% (p<0.001), respectively. The SMFs had no effect on erythrocyte morphology and metabolite levels. However, membrane fluidity of the samples exposed to 0.8-T SMF decreased significantly (p<0.05) in the hydrophobic regions. For the dehydration stability experiments, the samples exposed to 0.8-T SMF exhibited significantly lower (p<0.05) hemolysis. These results demonstrate that a 0.8-T SMF decreases membrane fluidity and enhances erythrocyte membrane stability to resist dehydration damage caused by slow cooling procedures.
机译:这项研究的目的是评估在缓慢冷却过程中,静磁场(SMF)对人红细胞的防冻作用。悬浮在20%甘油中的人类红细胞用0.4-T或0.8-T SMF缓慢冷冻,然后移至-80°C的冰箱中24小时。检查了解冻的红细胞的存活率,形态和代谢产物的变化。为了了解SMF可能的冷冻保护机制,测试了SMF暴露的红细胞的膜流动性和脱水稳定性。对于每个测试,将假接触的红细胞用作对照。我们的结果表明,冷冻加上0.4-T或0.8-T SMF分别将冷冻解冻的红细胞的相对存活率分别提高了10%和20%(p <0.001)。 SMF对红细胞形态和代谢产物水平没有影响。然而,暴露于0.8-T SMF的样品的膜流动性在疏水区域显着降低(p <0.05)。对于脱水稳定性实验,暴露于0.8-T SMF的样品表现出明显更低的溶血(p <0.05)。这些结果证明0.8-T SMF降低了膜的流动性并增强了红细胞膜的稳定性,以抵抗由缓慢的冷却程序引起的脱水损伤。

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