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一种具有形状记忆功能的可生物降解壳聚糖-聚氨酯水凝胶。

A Biodegradable Chitosan-Polyurethane Cryogel with Switchable Shape Memory.

机构信息

Institute of Polymer Science and Engineering, National Taiwan University, No. 1, Sec. 4 Roosevelt Road, Taipei Taiwan 10617, Republic of China.

National Synchrotron Radiation Research Center, Hsinchu, Taiwan 30076, Republic of China.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 3;13(8):9702-9713. doi: 10.1021/acsami.0c21940. Epub 2021 Feb 18.

Abstract

Cryogels are matrices that are formed in moderately frozen solutions of monomeric or polymeric precursors. They have the advantages of interconnected macropores, structural stability, and compressibility. Meanwhile, thermally induced shape memory is an attractive feature of certain functional materials. Although there have been several studies concerning shape-memory cryogels, little work has been conducted on shape-memory cryogels with biodegradability. In this study, a water-based biodegradable difunctional polyurethane with a shape-memory property was synthesized and used as the nanoparticulate crosslinker to react with chitosan to form a shape-memory cryogel. The thermally induced shape-memory mechanism was clarified using in situ wide-angle X-ray scattering (WAXS) and small-angle X-ray scattering (SAXS) during the shape-memory process. The in situ WAXS showed the changes of crystallinity in the crosslinker and the cryogel during the shape fixation and recovery processes. The in situ SAXS revealed the orientation of crystallinity of the crosslinker and the cryogel as the mechanism for shape memory. The strip-shape cryogel was deformed at 50 °C to U-shape and fixed at - 20 °C, which was squeezable at 25 °C and returned to the strip-shape at 50 °C in air. The shape recovery was further tested in water at two different temperatures. The injected cryogel recovered the U-shape in 4 °C water, representing elastic recovery, and transformed to a long strip in 37 °C water, representing the switchable shape memory. Moreover, the shape-memory cryogel sheet with a large dimension (10 mm × 10 mm × 1.1 mm cryogel sheet) or with complex structures (N, T, and U shapes) could be fixed as a rod, injected through a 16 G needle, and return to its original shape in 37 °C water, all of which could not be achieved by the conventional cryogel. Human mesenchymal stem cells grown in the shape-memory cryogel scaffolds displayed long-term proliferation and chondrogenic potential. Their unique injectability and cytocompatibility suggested potential applications of shape-memory cryogels as injectable and expandable templates for tissue engineering and minimally invasive surgery.

摘要

冷冻凝胶是由单体或多体前驱物在中度冷冻溶液中形成的基质。它们具有相互连通的大孔、结构稳定性和可压缩性等优点。同时,热致形状记忆是某些功能材料的一个吸引人的特性。尽管已经有几项关于形状记忆冷冻凝胶的研究,但关于具有可生物降解性的形状记忆冷冻凝胶的研究却很少。本研究合成了一种具有形状记忆性能的水基可生物降解的双官能度聚氨酯,并将其用作纳米颗粒交联剂与壳聚糖反应,形成形状记忆冷冻凝胶。通过原位广角 X 射线散射(WAXS)和小角 X 射线散射(SAXS)研究了在形状记忆过程中热致形状记忆机制。原位 WAXS 显示了交联剂和冷冻凝胶在形状固定和恢复过程中结晶度的变化。原位 SAXS 揭示了交联剂和冷冻凝胶的结晶度取向,作为形状记忆的机制。条状冷冻凝胶在 50°C 下变形为 U 形,在-20°C 下固定,在 25°C 下可压缩,并在空气中恢复为条状。形状恢复进一步在两种不同温度的水中进行测试。注入的冷冻凝胶在 4°C 水中恢复 U 形,代表弹性恢复,在 37°C 水中转变为长带,代表可切换的形状记忆。此外,具有大尺寸(10mm×10mm×1.1mm 冷冻凝胶片)或复杂结构(N、T 和 U 形)的形状记忆冷冻凝胶片可固定为棒状,通过 16G 针头注入,并在 37°C 水中恢复其原始形状,这是传统冷冻凝胶无法实现的。在形状记忆冷冻凝胶支架中生长的人骨髓间充质干细胞表现出长期增殖和软骨形成潜力。它们独特的可注射性和细胞相容性表明,形状记忆冷冻凝胶作为组织工程和微创手术的可注射和可扩张模板具有潜在的应用前景。

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