School of Materials Science and Engineering, Zhengzhou University, 450001 Zhengzhou, Henan, China.
School of Materials Science and Engineering, Beijing Institute of Technology, 100081 Beijing, China.
Acta Biomater. 2024 Jan 15;174:49-68. doi: 10.1016/j.actbio.2023.11.035. Epub 2023 Nov 30.
Antifreeze (glyco) proteins [AF(G)Ps], which are widely present in various extreme microorganisms, can control the formation and growth of ice crystals. Given the significance of cryogenic technology in biomedicine, climate science, electronic energy, and other fields of research, scientists are quite interested in the development and synthesis high-efficiency bionic antifreeze protein materials, particularly to reproduce their dynamic ice shaping (DIS) characteristics. Single ice crystal shaping materials, a promising class of ice-controlling materials, can alter the morphology and growth rate of ice crystals at low temperatures. This review aims to highlight the development of single ice crystal shaping materials and provide a brief comparison between a series of natural and bionic synthetic materials with DIS ability, which include AF(G)Ps, polymers, salts, and nanomaterials. Additionally, we summarize their applications in cryopreservation. Finally, this paper presents the current challenges and prospects encountered in developing high-efficiency and practical single ice crystal shaping materials. STATEMENT OF SIGNIFICANCE: The formation and growth of ice crystals hold a significant importance to an incredibly broad range of fields. Therefore, the design and fabrication of the single ice crystal shaping materials have gained the increasing popularity due to its key role in dynamic ice shaping (DIS) characteristics. Especially, single ice crystal shaping materials are considered one of the most promising candidates as ice inhibitors, presenting tremendous prospects for enhancing cryopreservation. In this work, we focus on the molecular characteristics, structure-function relationships, and DIS mechanisms of typical natural and biomimetic synthetic materials. This review may provide inspiration for the design and preparation of single ice crystal shaping materials and give guidance for the development of effective cryopreservation agent.
抗冻(糖)蛋白[AF(G)Ps]广泛存在于各种极端微生物中,能够控制冰晶的形成和生长。鉴于低温技术在生物医学、气候科学、电子能源等研究领域的重要性,科学家们对开发和合成高效仿生抗冻蛋白材料非常感兴趣,特别是为了再现它们的动态冰成型(DIS)特性。单晶形材料是一类很有前途的控冰材料,能够在低温下改变冰晶的形态和生长速率。本综述旨在强调单晶形材料的发展,并简要比较一系列具有 DIS 能力的天然和仿生合成材料,包括 AF(G)Ps、聚合物、盐和纳米材料。此外,我们还总结了它们在低温保存方面的应用。最后,本文提出了在开发高效实用的单晶形材料时遇到的当前挑战和前景。
冰晶的形成和生长对极其广泛的领域都具有重要意义。因此,由于其在动态冰成型(DIS)特性中的关键作用,单晶形材料的设计和制造得到了越来越多的关注。特别是,单晶形材料被认为是最有前途的冰抑制剂之一,在提高低温保存方面具有巨大的前景。在这项工作中,我们重点研究了典型天然和仿生合成材料的分子特征、结构-功能关系和 DIS 机制。本综述可能为单晶形材料的设计和制备提供启示,并为有效低温保存剂的开发提供指导。