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Development of biodegradable crosslinked urethane-doped polyester elastomers.

机译:开发可生物降解的交联氨基甲酸酯掺杂的聚酯弹性体。

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摘要

Traditional crosslinked polyester elastomers are inherently weak, and the strategy of increasing crosslink density to improve their mechanical properties makes them brittle materials. Biodegradable polyurethanes, although strong and elastic, do not fare well in dynamic environments due to the onset of permanent deformation. The design and development of a soft, strong and completely elastic (100% recovery from deformation) material for tissue engineering still remains a challenge. Herein, we report the synthesis and evaluation of a new class of biodegradable elastomers, crosslinked urethane-doped polyesters (CUPEs), which is able to satisfy the need for soft, strong, and elastic biomaterials. Tensile strength of CUPE was as high as 41.07+/-6.85 MPa with corresponding elongation at break of 222.66+/-27.84%. The initial modulus ranged from 4.14+/-1.71 MPa to 38.35+/-4.5 MPa. Mechanical properties and degradation rates of CUPE could be controlled by varying the choice of diol used for synthesis, the polymerization conditions, as well as the concentration of urethane bonds in the polymer. The polymers demonstrated good in vitro and in vivo biocompatibilities. Preliminary hemocompatibility evaluation indicated that CUPE adhered and activated lesser number of platelets compared to PLLA. Good mechanical properties and easy processability make these materials well suited for soft tissue engineering applications. The introduction of CUPEs provides new avenues to meet the versatile requirements of tissue engineering and other biomedical applications.
机译:传统的交联聚酯弹性体固有地较弱,增加交联密度以改善其机械性能的策略使它们成为脆性材料。可生物降解的聚氨酯虽然坚硬而富有弹性,但由于永久变形的发生,在动态环境中的表现并不理想。用于组织工程的柔软,坚固,完全弹性(从变形中恢复100%)材料的设计和开发仍然是一个挑战。本文中,我们报告了一种新型的可生物降解的弹性体-交联的氨基甲酸酯掺杂的聚酯(CUPEs),其合成和评估能够满足对柔软,结实和弹性的生物材料的需求。 CUPE的拉伸强度高达41.07 +/- 6.85 MPa,相应的断裂伸长率为222.66 +/- 27.84%。初始模量为4.14 +/- 1.71 MPa至38.35 +/- 4.5 MPa。可以通过改变用于合成的二醇的选择,聚合条件以及聚合物中氨基甲酸酯键的浓度来控制CUPE的机械性能和降解速率。该聚合物表现出良好的体外和体内生物相容性。初步血液相容性评估表明,与PLLA相比,CUPE粘附并激活的血小板数量更少。良好的机械性能和易加工性使这些材料非常适合软组织工程应用。 CUPE的推出提供了新的途径,可以满足组织工程和其他生物医学应用的多种需求。

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