Trehalose in Biomedical Cryopreservation–Properties, Mechanisms, Delivery Methods, Applications, Benefits, and Problems

海藻糖 低温保存 低温生物学 玻璃化 细胞生物学 化学 生物 生物化学 男科 医学 胚胎
作者
Y. Hu,Xiangjian Liu,Fenglin Liu,Jingxian Xie,Qubo Zhu,Songwen Tan
出处
期刊:ACS Biomaterials Science & Engineering [American Chemical Society]
卷期号:9 (3): 1190-1204 被引量:79
标识
DOI:10.1021/acsbiomaterials.2c01225
摘要

Cells and tissues are the foundation of translational medicine. At present, one of the main technological obstacles is their preservation for long-term usage while maintaining adequate viability and function. Optimized storage techniques must be developed to make them safer to use in the clinic. Cryopreservation is the most common long-term preservation method to maintain the vitality and function of cells and tissues. But, the formation of ice crystals in cells and tissues is considered to be the main mechanism that could harm cells and tissues during freezing and thawing. To reduce the formation of ice crystals, cryoprotective agents (CPAs) must be added to the cells and tissues to achieve the cryoprotective effect. However, conventional cryopreservation of cells and tissues often needs to use toxic organic solvents as CPAs. As a result, cryopreserved cells and tissues may need to go through a time-consuming washing process to remove CPAs for further applications in translational medicine, and multiple valuable cells are potentially lost or killed. Currently, trehalose has been researched as a nontoxic CPA due to its cryoprotective ability and stability during cryopreservation. Nevertheless, trehalose is a nonpermeable CPA, and the lack of an effective intracellular trehalose delivery method has become the main obstacle to its use in cryopreservation. This article illustrated the properties, mechanisms, delivery methods, and applications of trehalose, summarized the benefits and limits of trehalose, and summed up the findings and research direction of trehalose in biomedical cryopreservation.
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