Mechanisms, Applications, and Challenges of Utilizing Nanomaterials in Cryopreservation

IF 3.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Advanced Engineering Materials Pub Date : 2024-09-19 DOI:10.1002/adem.202400800
Ziyuan Wang, Dayong Gao, Zhiquan Shu
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Abstract

Cryopreservation of biological samples, including cells, tissues, and organs, has become an essential component in various biomedical research and applications, such as cellular therapy, tissue engineering, organ transplantation, and conservation of endangered species. However, it faces critical challenges throughout the cryopreservation process, such as loading/unloading of cryoprotective agent (CPA), ice inhibition during cooling, and ultrafast and uniform heating during rewarming. Applying nanomaterials in cryopreservation has emerged as a promising solution to address these challenges in each step due to their unique properties. For instance, in order to deliver nonpermeating CPA into cells, some nanomaterials, such as polymeric nanocapsule, can carry nonpermeating CPA to penetrate into the cells, regulating the intracellular ice crystal. During cooling, some nanomaterials, such as graphene oxide, can bind to basal or prism planes of ice crystals, suppressing the ice growth. During rewarming, some nanomaterials, such as magnetic nanoparticles, can improve the heating performance, preventing devitrification and recrystallization during rewarming. However, challenges in nanomaterials-assisted cryopreservation remain, including the need for comprehensive studies on nanomaterials toxicity and the development of scalable manufacturing processes for industrial applications. This review examines the role of nanomaterials in cryopreservation, focusing on their mechanisms, applications, and associated challenges.

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利用纳米材料进行低温保存的机理、应用和挑战
生物样本(包括细胞、组织和器官)的冷冻保存已成为各种生物医学研究和应用(如细胞疗法、组织工程、器官移植和濒危物种保护)的重要组成部分。然而,它在整个冷冻保存过程中面临着严峻的挑战,例如冷冻保护剂(CPA)的装载/卸载、冷却过程中的冰抑制以及回温过程中的超快均匀加热。由于纳米材料的独特性质,在低温保存过程中应用纳米材料已成为一种很有前途的解决方案,可解决每个步骤中的这些难题。例如,为了向细胞内输送非渗透性 CPA,一些纳米材料(如高分子纳米胶囊)可携带非渗透性 CPA 渗入细胞,调节细胞内冰晶。在冷却过程中,一些纳米材料(如氧化石墨烯)可与冰晶的基面或棱面结合,抑制冰晶生长。在回温过程中,一些纳米材料(如磁性纳米粒子)可以改善加热性能,防止回温过程中的蜕变和再结晶。然而,纳米材料辅助低温保存仍面临挑战,包括需要对纳米材料的毒性进行全面研究,以及为工业应用开发可扩展的制造工艺。本综述探讨了纳米材料在低温保存中的作用,重点是其机制、应用和相关挑战。
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来源期刊
Advanced Engineering Materials
Advanced Engineering Materials 工程技术-材料科学:综合
CiteScore
5.70
自引率
5.60%
发文量
544
审稿时长
1.7 months
期刊介绍: Advanced Engineering Materials is the membership journal of three leading European Materials Societies - German Materials Society/DGM, - French Materials Society/SF2M, - Swiss Materials Federation/SVMT.
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