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纤维素冷冻凝胶作为生物医学应用的有前景材料

Cellulose Cryogels as Promising Materials for Biomedical Applications.

作者信息

Tyshkunova Irina V, Poshina Daria N, Skorik Yury A

机构信息

Institute of Macromolecular Compounds of the Russian Academy of Sciences, Bolshoi VO 31, 199004 St. Petersburg, Russia.

出版信息

Int J Mol Sci. 2022 Feb 12;23(4):2037. doi: 10.3390/ijms23042037.

Abstract

The availability, biocompatibility, non-toxicity, and ease of chemical modification make cellulose a promising natural polymer for the production of biomedical materials. Cryogelation is a relatively new and straightforward technique for producing porous light and super-macroporous cellulose materials. The production stages include dissolution of cellulose in an appropriate solvent, regeneration (coagulation) from the solution, removal of the excessive solvent, and then freezing. Subsequent freeze-drying preserves the micro- and nanostructures of the material formed during the regeneration and freezing steps. Various factors can affect the structure and properties of cellulose cryogels, including the cellulose origin, the dissolution parameters, the solvent type, and the temperature and rate of freezing, as well as the inclusion of different fillers. Adjustment of these parameters can change the morphology and properties of cellulose cryogels to impart the desired characteristics. This review discusses the structure of cellulose and its properties as a biomaterial, the strategies for cellulose dissolution, and the factors affecting the structure and properties of the formed cryogels. We focus on the advantages of the freeze-drying process, highlighting recent studies on the production and application of cellulose cryogels in biomedicine and the main cryogel quality characteristics. Finally, conclusions and prospects are presented regarding the application of cellulose cryogels in wound healing, in the regeneration of various tissues (e.g., damaged cartilage, bone tissue, and nerves), and in controlled-release drug delivery.

摘要

纤维素的可得性、生物相容性、无毒性以及易于化学修饰,使其成为生产生物医学材料的一种很有前景的天然聚合物。冷冻凝胶化是一种相对新颖且简单的制备多孔轻质和超大孔纤维素材料的技术。生产阶段包括将纤维素溶解在合适的溶剂中,从溶液中再生(凝固),去除过量溶剂,然后冷冻。随后的冷冻干燥保留了在再生和冷冻步骤中形成的材料的微观和纳米结构。各种因素会影响纤维素冷冻凝胶的结构和性能,包括纤维素来源、溶解参数、溶剂类型、冷冻温度和速率,以及不同填料的加入。调整这些参数可以改变纤维素冷冻凝胶的形态和性能,以赋予所需特性。本文综述了纤维素的结构及其作为生物材料的性能、纤维素溶解策略以及影响所形成冷冻凝胶结构和性能的因素。我们重点关注冷冻干燥过程的优势,突出近期关于纤维素冷冻凝胶在生物医学中的生产和应用以及主要冷冻凝胶质量特性的研究。最后,给出了关于纤维素冷冻凝胶在伤口愈合、各种组织(如受损软骨、骨组织和神经)再生以及控释药物递送方面应用的结论和前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1cf1/8880007/1c9909f702d5/ijms-23-02037-g001.jpg

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