Thermoresponsive polysaccharides and their thermoreversible physical hydrogel networks

自愈水凝胶 低临界溶液温度 生物相容性 色谱中的热响应聚合物 聚合物 组织工程 药物输送 多糖 材料科学 智能聚合物 结冷胶 纳米技术 细胞包封 琼脂糖 生物降解 化学工程 化学 生物医学工程 高分子化学 有机化学 复合材料 色谱法 冶金 高效液相色谱法 共聚物 工程类 医学 反相色谱法 食品科学
作者
Sarah Graham,Paula Facal Marina,Anton Blencowe
出处
期刊:Carbohydrate Polymers [Elsevier BV]
卷期号:207: 143-159 被引量:158
标识
DOI:10.1016/j.carbpol.2018.11.053
摘要

Thermoresponsive polymers have been used extensively for various applications including food additives, pharmaceutical formulations, therapeutic delivery, cosmetics and environmental remediation, to mention a few. Many thermoresponsive polymers have the ability to form physical hydrogel networks in response to temperature changes, which are particularly useful for emerging biomedical applications, including cell therapies, drug delivery systems, tissue engineering, wound healing and 3D bioprinting. In particular, the use of polysaccharides with thermoresponsive properties has been of interest due to their wide availability, versatile functionality, biodegradability, and in many cases, inherent biocompatibility. Naturally thermoresponsive polysaccharides include agarose, carrageenans and gellan gum, which exhibit upper critical solution temperatures, transitioning from a solution to a gel state upon cooling. Arguably, this limits their use in biomedical applications, particularly for cell encapsulation as they require raised temperatures to maintain a solution state that may be detrimental to living systems. Conversely, significant progress has been made over recent years to develop synthetically modified polysaccharides, which tend to exhibit lower critical solution temperatures, transitioning from a solution to a gel state upon warming. Of particular interest are thermoresponsive polysaccharides with a lower critical solution temperature in between room temperature and physiological temperature, as their solutions can conveniently be manipulated at room temperature before gelling upon warming to physiological temperature, which makes them ideal candidates for many biological applications. Therefore, this review provides an introduction to the different types of thermoresponsive polysaccharides that have been developed, their resulting hydrogels and properties, and the exciting applications that have emerged as a result of these properties.
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