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通过大气等离子体诱导表面共聚,接枝两性离子磺酸甜菜碱的聚偏氟乙烯膜具有高效的血液相容性。

Zwitterionic sulfobetaine-grafted poly(vinylidene fluoride) membrane with highly effective blood compatibility via atmospheric plasma-induced surface copolymerization.

机构信息

R&D Center for Membrane Technology and Department of Chemical Engineering, Chung Yuan Christian University, Chung-Li, Taoyuan 320, Taiwan.

出版信息

ACS Appl Mater Interfaces. 2011 Apr;3(4):1228-37. doi: 10.1021/am200055k. Epub 2011 Mar 21.

Abstract

Development of nonfouling membranes to prevent nonspecific protein adsorption and platelet adhesion is critical for many biomedical applications. It is always a challenge to control the surface graft copolymerization of a highly polar monomer from the highly hydrophobic surface of a fluoropolymer membrane. In this work, the blood compatibility of poly(vinylidene fluoride) (PVDF) membranes with surface-grafted electrically neutral zwitterionic poly(sulfobetaine methacrylate) (PSBMA), from atmospheric plasma-induced surface copolymerization, was studied. The effect of surface composition and graft morphology, electrical neutrality, hydrophilicity and hydration capability on blood compatibility of the membranes were determined. Blood compatibility of the zwitterionic PVDF membranes was systematically evaluated by plasma protein adsorption, platelet adhesion, plasma-clotting time, and blood cell hemolysis. It was found that the nonfouling nature and hydration capability of grafted PSBMA polymers can be effectively controlled by regulating the grafting coverage and charge balance of the PSBMA layer on the PVDF membrane surface. Even a slight charge bias in the grafted zwitterionic PSBMA layer can induce electrostatic interactions between proteins and the membrane surfaces, leading to surface protein adsorption, platelet activation, plasma clotting and blood cell hemolysis. Thus, the optimized PSBMA surface graft layer in overall charge neutrality has a high hydration capability and the best antifouling, anticoagulant, and antihemolytic activities when comes into contact with human blood.

摘要

发展抗非特异性蛋白质吸附和血小板黏附的非黏附性膜对于许多生物医学应用至关重要。从氟聚合物膜的高疏水性表面控制高度极性单体的表面接枝共聚始终是一个挑战。在这项工作中,通过大气压等离子体诱导的表面共聚,研究了接枝电中性两性离子聚(磺酸甜菜碱甲基丙烯酸酯)(PSBMA)的聚偏二氟乙烯(PVDF)膜的血液相容性。确定了膜的表面组成和接枝形态、电中性、亲水性和水合能力对血液相容性的影响。通过等离子体蛋白吸附、血小板黏附、血浆凝固时间和血细胞溶血来系统评估两性离子 PVDF 膜的血液相容性。发现接枝 PSBMA 聚合物的抗污性质和水合能力可以通过调节 PVDF 膜表面 PSBMA 层的接枝覆盖率和电荷平衡来有效控制。即使接枝两性离子 PSBMA 层中存在微小的电荷偏差,也会导致蛋白质与膜表面之间发生静电相互作用,从而导致表面蛋白吸附、血小板活化、血浆凝固和血细胞溶血。因此,当与人体血液接触时,具有最佳电荷中和性的优化 PSBMA 表面接枝层具有高水合能力和最佳的抗污、抗凝血和抗溶血活性。

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