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Applying Thermosettable Zwitterionic Copolymers as General Fouling-Resistant and Thermal-Tolerant Biomaterial Interfaces

机译:将热固性两性离子共聚物用作一般的防污和耐热生物材料界面

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We introduced a thermosettable zwitterionic copolymer to design a high temperature tolerance biomaterial as a general antifouling polymer interface: The original synthetic fouling-resistant copolymer, poly(vinylpyrrolidone)co-poly(sulfobetaine methacrylate) (poly(VP-co-SBMA)), is both thermal-tolerant and fouling-resistant, and the antifouling stability of copolymer coated interfaces can be effectively controlled by regulating the VP/SBMA composition ratio. We studied poly(VP-co-SBIVIA) copolymer gels and networks with a focus on their general resistance to protein, tell, and bacterial bioadhesion, as influenced by the thermosetting process. Interestingly, we found that the shape of the poly(VP-co-SBMA) copolymer material can be set at a high annealing temperature of 200 C while maintaining good antifouling properties. However, while the zwitterionic PSBMA. polymer gels were bioinert as expected, control of the fouling resistance of the PSBMA polymer networks was lost in the high temperature annealing process. A poly(VP-co-SBMA) copolymer network composed of PSBMA segments at 32 mol % showed reduced fibrinogen adsorption, tissue Cell adhesion, and bacterial attachment, but a relatively higher PSBMA content of 61 mol % was required to optimize resistance to platelet adhesion and erythrocyte attachment to confer hemocompatibility to human blood. We suggest that poly(VP-co-SBMA) copolymers capable of retaining stable, fouling resistance after high temperature shaping have a potential application as thermosettable materials in a bioinert interface for medical devices, such as the thermosettable coating on a stainless steel blood-compatible metal stent investigated in this study.
机译:我们引入了一种可热固的两性离子共聚物,以设计一种耐高温的生物材料,作为一般的防污聚合物界面:原始的合成防污共聚物,聚(乙烯基吡咯烷酮)共聚(磺基甜菜碱甲基丙烯酸甲酯)(poly(VP-co-SBMA)),具有耐热性和耐污垢性,通过调节VP / SBMA组成比可以有效控制共聚物涂层界面的防污稳定性。我们研究了聚(VP-co-SBIVIA)共聚物凝胶和网络,重点是受热固性过程影响的它们对蛋白质,蛋白质和细菌生物粘附的一般抵抗力。有趣的是,我们发现聚(VP-co-SBMA)共聚物材料的形状可以设定为200℃的高退火温度,同时保持良好的防污性能。但是,两性离子PSBMA。聚合物凝胶具有预期的生物惰性,在高温退火过程中失去了对PSBMA聚合物网络耐污垢性的控制。由32摩尔%的PSBMA链段组成的聚(VP-co-SBMA)共聚物网络显示出降低的纤维蛋白原吸附,组织细胞粘附和细菌附着,但需要相对较高的61摩尔%PSBMA含量才能优化对血小板粘附的抵抗力和红细胞附着可赋予人血血液相容性。我们建议,能够在高温成型后保持稳定,耐污垢性的聚(VP-co-SBMA)共聚物作为热固性材料在医疗设备生物惰性界面中具有潜在的应用潜力,例如与血液相容的不锈钢上的热固性涂层金属支架在本研究中进行了研究。

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