Albumin and heparin multilayer coatings for blood-contacting medical devices

被引:0
|
作者
Brynda, E [1 ]
Houska, M
Jirousková, M
Dyr, JE
机构
[1] Acad Sci Czech Republ, Inst Macromol Chem, CR-16206 Prague 6, Czech Republic
[2] Inst Hematol & Blood Transfus, CR-12820 Prague, Czech Republic
来源
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH | 2000年 / 51卷 / 02期
关键词
albumin-heparin multilayer coatings; in vivo durability; adsorption of plasma proteins; interaction with platelets;
D O I
10.1002/(SICI)1097-4636(200008)51:2<249::AID-JBM14>3.0.CO;2-X
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Three types of covalently crosslinked assemblies consisting of multiple (1) molecular layers of human serum albumin (HSA); (2) alternating layers of HSA and unfractionated heparin; and (3) alternating layers of HSA and partly depolymerized heparin fixed with one end to HSA were prepared on various surfaces. Adsorption of fibrinogen, IgG, and antithrombin (ATIII) from human citrated plasma on coated surfaces was evaluated by ELISA. Fibrinogen adsorption on coated ELISA plates was lower than that on bare polystyrene. There was no IgG adsorption on the HSA coating alone, but considerably high IgG adsorption was detected on the heparin-containing surface. The adsorption of ATIII. increased with increasing heparin on the surface. The effect of multilayer coatings on platelets was tested by incubation of modified vascular prostheses with citrated blood. The most favorable interaction with platelets was observed on the HSA assembly. The interaction of platelets with the surface bearing unfractionated heparin was higher than that of the surface covered with partly depolymerized heparin. The long-term durability of the HSA-heparin coating was proven by a 21-day implantation of coated polyurethane plates in goat heart. (C) 2000 John Wiley & Sons, Inc. J Biomed Mater Res, 51, 249-257, 2000.
引用
收藏
页码:249 / 257
页数:9
相关论文
共 50 条
  • [1] Albumin and heparin multilayer coatings for blood contacting biomaterials
    Dyr, JE
    Brynda, E
    Houska, M
    Jirousková, M
    Suttnar, J
    THROMBOSIS AND HAEMOSTASIS, 1999, : 352 - 352
  • [2] Anti-fouling coatings for blood-contacting devices
    Yao S.
    Yan H.
    Tian S.
    Luo R.
    Zhao Y.
    Wang J.
    Smart Materials in Medicine, 2024, 5 (01): : 166 - 180
  • [3] Potential of Superhydrophobic Surface for Blood-Contacting Medical Devices
    Wu, Xun Hui
    Liew, Yun Khoon
    Mai, Chun-Wai
    Then, Yoon Yee
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (07)
  • [4] Advanced Surface Modifications for Blood-Contacting Surfaces of Medical Devices
    Wu, Zhongjun J.
    Garimella, Narayana
    Larsson, Rolf
    Brynda, Eduard
    INTERNATIONAL JOURNAL OF BIOMATERIALS, 2012, 2012
  • [5] Simulation of the effect of hemolysis on thrombosis in blood-contacting medical devices
    Valtchanov, H.
    Cecere, R.
    Atkinson, L. T. J.
    Mongrain, R.
    MEDICAL ENGINEERING & PHYSICS, 2024, 131
  • [6] Design of nonthrombogenic polymer surfaces for blood-contacting medical devices
    Kim, SW
    Jacobs, H
    BLOOD PURIFICATION, 1996, 14 (05) : 357 - 372
  • [7] Strategies for Improving Endothelial Cell Adhesion to Blood-Contacting Medical Devices
    Wolfe, Jayne T.
    Shradhanjali, Akankshya
    Tefft, Brandon J.
    TISSUE ENGINEERING PART B-REVIEWS, 2022, 28 (05) : 1067 - 1092
  • [8] Thrombogenicity Testing for Blood-Contacting Medical Devices in an in vitro Human Blood-Loop
    Cunningham, Matt
    Howard, Sarah
    Beltrame, Abby
    Chen, Yan
    Smith, Mark
    2018 DESIGN OF MEDICAL DEVICES CONFERENCE, 2018,
  • [9] DEVELOPMENT OF THERMOPLASTICS FOR BLOOD-CONTACTING BIOMEDICAL DEVICES
    WARD, RS
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1980, 179 (MAR): : 6 - INDE
  • [10] Antithrombotic and Flow Drag-Reducing Material for Blood-Contacting Medical Devices
    Tan, Justin Kok Soon
    Chen, Elaine Shi An
    Dong, Yibing
    Fang, Hui
    Koh, Cho Yeow
    Kini, R. Manjunatha
    Kim, Sangho
    Leo, Hwa Liang
    Yap, Choon Hwai
    ADVANCED MATERIALS INTERFACES, 2023, 10 (10)