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Effects of molecular architecture of phospholipid polymers on surface modification of segmented polyurethanes

机译:磷脂聚合物分子结构对链段聚氨酯表面改性的影响

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摘要

To modify the surface properties of segmented polyurethane (SPU), effects of the molecular architecture of the 2-methacryloyloxyethyl phosphorylcholine (MPC) polymers on the performance of the SPU/MPC polymer membrane were investigated. We combined the random-type, block-type, and graft-type of the MPC polymers with a typical SPU, Tecoflex~? using double solution casting procedure. The graft-type MPC polymers composed of a poly(MPC) main chain and poly(2-ethylhexyl methacrylate (EHMA)) side chains were synthesized through the combination of two different living radical polymerization techniques to regulate the density and chain length of the side chains. The SPU membranes modified with the MPC polymers were characterized using X-ray photoelectron spectroscopy and Fourier transform infrared spectroscopy. The results revealed that the MPC units were located on the SPU surface. Although the breaking strength of the SPU membranes modified with block-type poly(MPC-block-EHMA) and graft-type poly(MPC-graft-EHMA) was lower than that of SPU membranes modified with random-type poly(MPC-random-EHMA), their breaking strengths were adequate for manufacturing medical devices. On the other hand, better stability was observed in the MPC polymer layer on the SPU membrane after immersion in an aqueous medium, wherein the SPU membrane had been modified with the poly(MPC-graft-EHMA). This was because of the intermixing of the hydrophobic poly(EHMA) segments in the domain of the hard segments in the SPU membrane. After this modification, each SPU/MPC polymer membrane showed hydrophilic nature based on the MPC polymers and a dramatic suppression of protein adsorption. From these results, we concluded that the SPU membrane modified with the poly(MPC-graft-EHMA) was one of the promising polymeric biomaterials for making blood-contacting medical devices.
机译:为了改变链段聚氨酯(SPU)的表面性能,研究了2-甲基丙烯酰氧基乙基磷酰胆碱(MPC)聚合物的分子结构对SPU / MPC聚合物膜性能的影响。我们将MPC聚合物的随机型,嵌段型和接枝型与典型的SPUTecoflex®结合在一起。使用双重溶液浇铸程序。通过结合两种不同的活性自由基聚合技术来调节侧链的密度和链长,合成了由聚(MPC)主链和聚(甲基丙烯酸2-乙基己酯(EHMA))侧链组成的接枝型MPC聚合物。链。用X射线光电子能谱和傅里叶变换红外光谱对用MPC聚合物改性的SPU膜进行表征。结果表明,MPC单元位于SPU表面。尽管用嵌段型聚(MPC-block-EHMA)和接枝型聚(MPC-graft-EHMA)修饰的SPU膜的断裂强度低于用随机型聚(MPC-random)修饰的SPU膜的断裂强度-EHMA),其断裂强度足以制造医疗设备。另一方面,在浸入水性介质中后,在SPU膜上的MPC聚合物层中观察到更好的稳定性,其中SPU膜已经用聚(MPC-接枝-EHMA)改性。这是因为疏水性聚(EHMA)片段在SPU膜的硬片段域中混合在一起。进行此修饰后,每个SPU / MPC聚合物膜均基于MPC聚合物显示出亲水性,并显着抑制了蛋白质的吸附。从这些结果,我们得出结论,用聚(MPC-graft-EHMA)改性的SPU膜是用于制造血液接触医疗设备的有前途的聚合物生物材料之一。

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