a Department of Chemical Engineering and Safety , Binzhou University , Binzhou , China.
b Success Biotechnology Co., Ltd , Jinan , China.
J Biomater Sci Polym Ed. 2019 Sep;30(13):1212-1226. doi: 10.1080/09205063.2019.1625525. Epub 2019 Jun 13.
In this article, a series of medical poly(ester-urethane)s (PEUs) with varying uniform-size hard segment content were prepared one-step chain extension of poly(-caprolactone)s with aliphatic urethane diisocyanate, and the corresponding films were obtained by solvent evaporation technique. The chemical structures of polymers were confirmed by H NMR, FT-IR and GPC. The effect of uniform-size hard segment content on the physicochemical properties of PEU films, including thermal properties, mechanical properties, crystallization behavior, water-swelling behavior and degradability, was extensively researched. The PEU films exhibiting similar thermal transition and thermal stability indicated that the uniform-size hard segment content had little effect on the thermal properties. Two obvious glass transition temperatures observed in DSC curves manifested a microphase separation structure, which endowed the PEU films excellent mechanical properties with ultimate stress of 34.6-51.2 MPa and strain at break of 898-1485%. And with the increase of uniform-size hard segment content, the initial modulus and ultimate stress increased, while the strain at break decreased. Due to the compact physical-linking network structure formed by the denser hydrogen bonds, the PEU films exhibited low water-swellability of less than 1.5 wt% and low degradation rate . The weight loss of the PEU films in degradation test was less than 1 wt% at the first four months and the time of films becoming fragments was more than 15 months. Cytotoxicity test of film extracts was conducted with L929 mouse fibroblasts, and the relative growth rate approached or exceeded 75%, indicating an acceptable cytocompatibility. For the excellent mechanical properties, slow biodegradability, non-toxic degradation products and adequate cytocompatibility, the PEUs containing uniform-size hard segments possess a high potential to be applied as long-term implant biomaterials.
本文通过一步法扩链反应,以脂肪族异氰酸酯和聚己内酯合成了一系列具有不同规整硬段含量的聚(酯-氨酯)(PEU),通过溶剂挥发法得到相应的薄膜。聚合物的化学结构通过 1 H NMR、FT-IR 和 GPC 得到确认。研究了规整硬段含量对 PEU 薄膜物理化学性能的影响,包括热性能、力学性能、结晶行为、溶胀性能和降解性能。PEU 薄膜具有相似的热转变和热稳定性,表明规整硬段含量对热性能影响较小。DSC 曲线中观察到两个明显的玻璃化转变温度表明存在微相分离结构,这使 PEU 薄膜具有优异的力学性能,其最大应力为 34.6-51.2 MPa,断裂伸长率为 898-1485%。随着规整硬段含量的增加,初始模量和最大应力增加,而断裂伸长率降低。由于致密的氢键形成的物理交联网络结构,PEU 薄膜的吸水率低,小于 1.5 wt%,降解速率低。在降解试验中,PEU 薄膜的失重率在最初四个月内小于 1 wt%,而薄膜变成碎片的时间超过 15 个月。采用 L929 小鼠成纤维细胞进行薄膜浸提液的细胞毒性试验,相对生长率接近或超过 75%,表明具有良好的细胞相容性。由于具有优异的力学性能、缓慢的生物降解性、无毒的降解产物和足够的细胞相容性,规整硬段含量的聚(酯-氨酯)具有作为长期植入生物材料的高应用潜力。