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A mild method for surface-grafting MPC onto poly(ester-urethane) based on aliphatic diurethane diisocyanate with high grafting efficiency

机译:一种温和的将MPC表面接枝到脂肪族二氨基甲酸酯二异氰酸酯基聚(酯-氨基甲酸酯)上的方法,具有较高的接枝效率

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The aim of this work is to provide a new kind of polyurethane with improved surface blood compatibility for long-term blood-contacting biomaterials. In the study, an aliphatic poly(ester-urethane) (H-PEU) with uniform size hard segments was synthesized by one-step chain extension of poly(epsilon-caprolactone) (PCL) with diurethane diisocyanate (HBH), and biomimetic phosphorylcholine (PC) groups were immobilized onto the film surface with high grafting efficiency by three-step chemical treatments under mild reaction conditions. The H-PEU film was firstly treated with 1,6-hexanediisocyanate (HDI) to introduce -NCO groups on the surface (H-PEU-NCO) through an allophanate reaction; the -NCO groups were then coupled via a condensation reaction with one of -NH2 groups of tris(2-aminoethyDamine (TAEA) to immobilize -NH2 on the surface (H-PEU-NH2); finally, the double bond of 2-methacryloyloxyethyl phosphorylcholine (MPC) reacted with -NH2 by Michael addition reaction to obtain MPC-grafted H-PEU (H-PEU-MPC). The modified surfaces were characterized by Fourier transform infrared spectroscopy (FT-IR) and X-ray photoelectron spectroscopy (XPS). The results verified that MPC was successfully grafted onto H-PEU surface with high grafting density. The blank and modified films showed similar crystallization behaviors, thermal stabilities and mechanical properties, indicating that the chemical treatments had minimum influence on the physicochemical properties of the substrate. The H-PEU-MPC displaying a much lower water contact angle (similar to 15.2 degrees) than H-PEU (80.3 degrees) meant that the hydrophilic PC functional groups improved the surface hydrophilicity significantly. The surface blood compatibility was examined by bovine serum albumin adsorption and platelet adhesion tests, and the results revealed that H-PEUMPC had improved resistance to protein adsorption and platelet adhesion capacity. The MPC-grafted H-PEU film possessed outstanding mechanical properties (ultimate stress: 36.1 MPa; strain at break: 883%), low protein adsorption quantity (1.33 mu g/cm(2)) and good anti-platelet adhesion capacity (582 +/- 16 per mm(2)), implying its high potential to be applied as biomaterials for vascular grafts, subcutaneously implanted devices or other blood contacting devices.
机译:这项工作的目的是为长期接触血液的生物材料提供一种具有改善的表面血液相容性的新型聚氨酯。在这项研究中,通过聚ε-己内酯(PCL)与二氨基甲酸酯二异氰酸酯(HBH)和仿生磷酰胆碱的一步扩链合成了具有均匀大小硬链段的脂族聚(酯-氨基甲酸酯)(H-PEU) (PC)组在温和的反应条件下通过三步化学处理以高接枝效率固定在膜表面上。首先用1,6-己二异氰酸酯(HDI)处理H-PEU膜,通过脲基甲酸酯反应在表面(H-PEU-NCO)上引入-NCO基团;然后,-NCO基团通过缩合反应与三(2-氨基乙基胺)(TAEA)的-NH2基团偶合,将-NH2固定在表面(H-PEU-NH2)上;最后,形成2-甲基丙烯酰氧基乙基的双键磷酸胆碱(MPC)与迈克尔·加成反应与-NH2反应,制得MPC接枝的H-PEU(H-PEU-MPC),并通过傅里叶变换红外光谱(FT-IR)和X射线光电子能谱( XPS)。结果证明MPC已成功接枝到H-PEU表面上,具有高接枝密度,空白膜和改性膜表现出相似的结晶行为,热稳定性和机械性能,表明化学处理对PPC的物理化学性能影响最小。 H-PEU-MPC的水接触角(约15.2度)比H-PEU(80.3度)低得多,这意味着亲水性PC官能团改善了表面亲水性坦率地通过牛血清白蛋白吸附和血小板粘附测试来检查表面血液的相容性,结果表明H-PEUMPC具有提高的对蛋白质吸附和血小板粘附能力的抵抗力。 MPC接枝的H-PEU膜具有出色的机械性能(最终应力:36.1 MPa;断裂应变:883%),低蛋白吸附量(1.33μg / cm(2))和良好的抗血小板粘附能力(582) +/- 16 / mm(2)),这表明它具有很高的潜力,可以用作血管移植物,皮下植入设备或其他血液接触设备的生物材料。

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