Guan Jianjun, Sacks Michael S, Beckman Eric J, Wagner William R
McGowan Institute for Regenerative Medicine, University of Pittsburgh, 100 Technology Drive, Pittsburgh, PA 15219, USA.
Biomaterials. 2004 Jan;25(1):85-96. doi: 10.1016/s0142-9612(03)00476-9.
Polymers with elastomeric mechanical properties, tunable biodegradation properties and cytocompatibility would be desirable for numerous biomedical applications. Toward this end a series of biodegradable poly(ether ester urethane)urea elastomers (PEEUUs) based on poly(ether ester) triblock copolymers were synthesized and characterized. Poly(ether ester) triblock copolymers were synthesized by ring-opening polymerization of epsilon-caprolactone with polyethylene glycol (PEG). PEEUUs were synthesized from these triblock copolymers and butyl diisocyanate, with putrescine as a chain extender. PEEUUs exhibited low glass transition temperatures and possessed tensile strengths ranging from 8 to 20MPa and breaking strains from 325% to 560%. Increasing PEG length or decreasing poly(caprolactone) length in the triblock segment increased PEEUU water absorption and biodegradation rate. Human umbilical vein endothelial cells cultured in a medium supplemented with PEEUU biodegradation solution suggested a lack of degradation product cytotoxicity. Endothelial cell adhesion to PEEUUs was less than 60% of tissue culture polystyrene and was inversely related to PEEUU hydrophilicity. Surface modification of PEEUUs with ammonia gas radio-frequency glow discharge and subsequent immobilization of the cell adhesion peptide Arg-Gly-Asp-Ser increased endothelial adhesion to a level equivalent to tissue culture polystyrene. These biodegradable PEEUUs thus possessed properties that would be amenable to applications where high strength and flexibility would be desirable and exhibited the potential for tuning with appropriate triblock segment selection and surface modification.
具有弹性体机械性能、可调节生物降解性能和细胞相容性的聚合物在众多生物医学应用中具有吸引力。为此,合成并表征了一系列基于聚(醚酯)三嵌段共聚物的可生物降解聚(醚酯聚氨酯)脲弹性体(PEEUUs)。聚(醚酯)三嵌段共聚物通过ε-己内酯与聚乙二醇(PEG)的开环聚合反应合成。PEEUUs由这些三嵌段共聚物与丁基二异氰酸酯合成,以腐胺作为扩链剂。PEEUUs表现出低玻璃化转变温度,拉伸强度范围为8至20MPa,断裂应变范围为325%至560%。在三嵌段链段中增加PEG长度或减少聚(己内酯)长度会提高PEEUU的吸水率和生物降解率。在补充有PEEUU生物降解溶液的培养基中培养的人脐静脉内皮细胞表明缺乏降解产物细胞毒性。内皮细胞对PEEUUs的粘附力小于组织培养聚苯乙烯的60%,且与PEEUU的亲水性呈负相关。用氨气射频辉光放电对PEEUUs进行表面改性,随后固定细胞粘附肽Arg-Gly-Asp-Ser,可将内皮细胞粘附力提高到与组织培养聚苯乙烯相当的水平。因此,这些可生物降解的PEEUUs具有适合高强度和高柔韧性应用的性能,并展示了通过适当选择三嵌段链段和表面改性进行调节的潜力。