Henderson Timothy M A, Ladewig Katharina, Haylock David N, McLean Keith M, O'Connor Andrea J
Department of Chemical and Biomolecular Engineering and Particulate Fluids Processing Centre (PFPC), The University of Melbourne, Parkville, VIC 3010, Australia.
J Mater Chem B. 2013 Jun 7;1(21):2682-2695. doi: 10.1039/c3tb20280a. Epub 2013 Apr 19.
The use of hydrogels as support materials for the growth and proliferation of mammalian cells has been well documented as they closely mimic the gel-like properties - and in some cases also the chemical properties - of the extracellular matrix (ECM), which naturally surrounds the cells of any biological tissue. Macro-porous hydrogels set below the freezing point of the solvent, so-called 'cryogels', have recently gained significant interest in the fields of tissue engineering and in vitro cell culture, thanks to their inherent interconnected macro-porous structure and ease of formation in comparison to other macro-pore forming techniques. This review highlights recent advances in cryogelation techniques and starting materials that can be utilised to synthesise biocompatible and biologically relevant cryogels as well as discussing physicochemical characterisation techniques for these materials. Lastly, emerging trends in the application of cryogels, particularly as three-dimensional ECM mimicking scaffolds for cell culture and tissue engineering, are discussed.
水凝胶作为哺乳动物细胞生长和增殖的支撑材料,其应用已有充分记载,因为它们紧密模拟细胞外基质(ECM)的凝胶状特性,在某些情况下还模拟其化学特性,而细胞外基质自然地包围着任何生物组织的细胞。低于溶剂冰点凝固形成的大孔水凝胶,即所谓的“冷冻凝胶”,由于其固有的相互连通的大孔结构,与其他形成大孔的技术相比易于形成,最近在组织工程和体外细胞培养领域引起了极大的关注。这篇综述重点介绍了冷冻凝胶化技术和起始材料的最新进展,这些技术和材料可用于合成生物相容性和生物学相关的冷冻凝胶,并讨论了这些材料的物理化学表征技术。最后,讨论了冷冻凝胶应用中的新趋势,特别是作为用于细胞培养和组织工程的三维细胞外基质模拟支架的应用趋势。