Key Laboratory of Green Printing, Beijing National Laboratory for Molecular Science, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, PR China.
School of Future Technology, University of Chinese Academy of Sciences, Beijing 100049, PR China.
J Am Chem Soc. 2022 Apr 6;144(13):5685-5701. doi: 10.1021/jacs.2c00203. Epub 2022 Mar 24.
Cryopreservation of tissues and organs can bring transformative changes to medicine and medical science. In the past decades, limited progress has been achieved, although cryopreservation of tissues and organs has long been intensively pursued. One key reason is that the cryoprotective agents (CPAs) currently used for cell cryopreservation cannot effectively preserve tissues and organs because of their cytotoxicity and tissue destructive effect as well as the low efficiency in controlling ice formation. In stark contrast, nature has its unique ways of controlling ice formation, and many living organisms can effectively prevent freezing damage. Ice-binding proteins (IBPs) are regarded as the essential materials identified in these living organisms for regulating ice nucleation and growth. Note that controversial results have been reported on the utilization of IBPs and their mimics for the cryopreservation of tissues and organs, that is, some groups revealed that IBPs and mimics exhibited unique superiorities in tissues cryopreservation, while other groups showed detrimental effects. In this perspective, we analyze possible reasons for the controversy and predict future research directions in the design and construction of IBP inspired ice-binding materials to be used as new CPAs for tissue cryopreservation after briefly introducing the cryo-injuries and the challenges of conventional CPAs in the cryopreservation of tissues and organs.
组织和器官的低温保存可以给医学和医学科学带来变革性的变化。尽管组织和器官的低温保存已经得到了长期的深入研究,但在过去的几十年中,进展有限。一个关键原因是,目前用于细胞低温保存的抗冻剂 (CPAs) 由于其细胞毒性和组织破坏性以及控制冰形成的效率低下,不能有效地保存组织和器官。相比之下,自然界有其独特的控制冰形成的方式,许多生物能够有效地防止冷冻损伤。冰结合蛋白 (IBP) 被认为是这些生物中用于调节冰核形成和生长的必需物质。值得注意的是,关于 IBP 及其类似物在组织低温保存中的应用存在争议的结果,即一些研究小组表明 IBP 和类似物在组织低温保存中表现出独特的优势,而其他研究小组则显示出有害的影响。在这篇观点文章中,我们分析了争议的可能原因,并在简要介绍了组织和器官低温保存中传统 CPAs 所面临的挑战和冷冻损伤后,预测了设计和构建受 IBP 启发的冰结合材料作为组织低温保存的新型 CPAs 的未来研究方向。