应用化学 ›› 2025, Vol. 42 ›› Issue (12): 1636-1648.DOI: 10.19894/j.issn.1000-0518.250091

• 研究论文 • 上一篇    下一篇

负载肝素和钛酸钡的聚偏氟乙烯静电纺丝膜制备及其抗凝抗菌性能

郭传宇1,2, 孙丽宇1,2, 关兴华1,2(), 石强1,2()   

  1. 1.中国科学技术大学应用化学与工程学院,合肥 230026
    2.中国科学院长春应用化学研究所,高分子科学与技术全国重点实验室,长春 130022

Heparin/Barium Titanate-Loaded PVDF Electrospun Membranes: Fabrication, Anticoagulant, and Antibacterial Performance

Chuan-Yu GUO1,2, Li-Yu SUN1,2, Xing-Hua GUAN1,2(), Qiang SHI1,2()   

  1. 1.School of Applied Chemistry and Engineering,University of Science and Technology of China,Hefei 230026,China
    2.State Key Laboratory of Polymer Science and Technology,Changchun Institute of Applied Chemistry,Chinese Academy of Sciences,Changchun 130022,China
  • Received:2025-03-04 Accepted:2025-08-13 Published:2025-12-01 Online:2025-12-30
  • Contact: Xing-Hua GUAN,Qiang SHI

摘要:

血液接触类医疗器械在临床上具有重要的应用,广泛用于血管支架、人工血管、瓣膜和血液净化设备等,对保障人类健康发挥着重要作用。 然而,在使用过程中,这些器械往往会引起机体的免疫反应和血栓形成,导致治疗效果不佳。 此外,植入过程中器械表面可能接触细菌,进而引发感染。 因此,开发具有抗凝和抗菌功能的功能性表面十分迫切。 本文针对血液接触类器械在使用过程中产生血栓和细菌感染的问题,通过静电纺丝技术,在基底材料表面制备了负载肝素和钛酸钡的聚偏氟乙烯(PVDF)微纳纤维膜(PVDF/Hep/BaTiO3),通过扫描电子显微镜、傅里叶变换红外光谱和X射线光电子能谱对材料表面进行表征,并对构建表面的生物相容性、血液相容性和抗菌能力进行了研究,结果表明: 微纳纤维中含有肝素,具有良好的抗血栓生成能力,使血小板粘附量降低60%; 微纳纤维的仿细胞外基质结构和肝素共同作用,使材料促内皮细胞增殖能力提高20%; 同时,微纳纤维的溶血率低于5%,细胞活力高于90%,体现出良好的生物相容性。 此外,微纳纤维中钛酸钡和PVDF能够协同增强压电效应,在超声预处理后,能够杀死90%以上的大肠杆菌和金黄葡萄球菌。 因此,PVDF/Hep/BaTiO3微纳纤维改性膜具有较好的促细胞增殖能力、抗凝能力和抗菌能力,为血液接触类器械的多功能化提供了一种简单、有效的表面改性策略。

关键词: 肝素, 聚偏氟乙烯, 抗凝, 抗菌, 压电性能

Abstract:

Blood-contacting medical devices hold significant clinical applications, including vascular stents, artificial blood vessels, valves, and blood purification equipment, playing a vital role in safeguarding human health. However, these devices often trigger immune responses and thrombus formation during use, leading to suboptimal therapeutic outcomes. Additionally, bacterial contact on device surfaces during implantation may result in infections. Consequently, there is an urgent need to develop blood-contacting device surfaces with dual anticoagulant and antibacterial functionalities. This study addresses the issues of thrombosis and bacterial infections that can occur during the use of blood contact devices. Using electrospinning technology, a polyvinylidene fluoride (PVDF) micro-nano fiber membrane loaded with heparin and barium titanate (PVDF/Hep/BaTiO3) was prepared on the surface of a substrate material. The material's surface was characterized using scanning electron microscopy, Fourier transform infrared spectroscopy, and X-ray photoelectron spectroscopy. The study investigated the biocompatibility, hemocompatibility, and antibacterial properties of the constructed surface. The results showed that the micro-nano fibers containing heparin exhibit excellent anti-thrombotic properties, reducing platelet adhesion by 60%. The extracellular matrix-like structure of the micro-nano fibers, combined with heparin, enhances the material's ability to promote endothelial cell proliferation by 20%. Additionally, the hemolysis rate of the micro-nano fibers is less than 5%, and the cell viability is over 90%, indicating good biocompatibility. Furthermore, the barium titanate and PVDF in the micro-nano fibers work together to enhance the piezoelectric effect, killing over 90% of bacteria after ultrasonic pretreatment.Thus, the PVDF/Hep/BaTiO3 micro/nano fiber-modified membrane exhibits excellent cell proliferation promotion, anticoagulation, and antibacterial properties, providing a simple yet effective surface modification strategy for multifunctional optimization of blood-contacting medical devices.

Key words: Heparin, Polyvinylidene fluoride, Anticoagulant, Antibacterial, Piezoelectric effect

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