Beyond Cell Capture: Antibody Conjugation Improves Hemocompatibility for Vascular Tissue Engineering Applications

被引:0
|
作者
Chong, Mark Seow Khoon [1 ,2 ,3 ]
Teoh, Swee-Hin [2 ]
Teo, Erin Yiling [2 ]
Zhang, Zhi-Yong [2 ]
Lee, Chueng Neng [3 ]
Koh, Stephen [1 ]
Choolani, Mahesh [1 ]
Chan, Jerry [1 ,4 ,5 ]
机构
[1] Natl Univ Singapore, Expt Fetal Med Grp, Dept Obstet & Gynaecol, Yong Loo Lin Sch Med, Singapore 119074, Singapore
[2] Natl Univ Singapore, Dept Mech Engn, Ctr Biomed Mat Applicat & Technol BIOMAT, Singapore 119074, Singapore
[3] Natl Univ Singapore, Dept Surg, Yong Loo Lin Sch Med, Singapore 119074, Singapore
[4] KK Womens & Childrens Hosp, Dept Reprod Med, Singapore, Singapore
[5] Duke NUS Grad Med Sch, Canc & Stem Cell Biol Program, Singapore, Singapore
基金
英国医学研究理事会;
关键词
EPSILON-CAPROLACTONE FILMS; IN-VITRO HEMOCOMPATIBILITY; SMOOTH-MUSCLE-CELLS; BLOOD COMPATIBILITY; POLY(EPSILON-CAPROLACTONE) FILMS; SURFACE MODIFICATION; ENDOTHELIAL-CELLS; PLATELET-ADHESION; PROGENITOR CELLS; ACRYLIC-ACID;
D O I
10.1089/ten.tea.2009.0680
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Antibody-conjugated surfaces are being studied for cardiovascular implant applications to capture endothelial progenitor cells and promote endothelialization. However, despite the large amount of literature on endothelial progenitor cell capture efficiency, little effort has been made to understand acute blood responses to the modified surfaces. We hypothesize that CD34 antibody conjugation passivates surfaces against procoagulatory events, and thus improves hemocompatibility. To test this hypothesis, we subjected the modified films to hemocompatibility tests to evaluate contact activation, platelet adhesion and activation, as well as whole blood clotting response to the films. Here, we demonstrate the alteration of blood responses due to polyacrylic acid (PAAc) engraftment and subsequent antibody conjugation on biaxially stretched polycaprolactone (PCL) films. Compared to PCL, PAAc-engrafted PCL (PCL-PAAc) and CD34-antibody-conjugated films (PCL-PAAC-CD34) resulted in a four-to ninefold (p < 0.001) reduced platelet activation. PCL-PAAc, however, resulted in an increased contact activation on thromboelastography, and a poorer blood compatibility index assay (43.4% +/- 2.3% vs. 60.9% +/- 2.5%, p < 0.05). PCL-PAAC-CD34, on the other hand, resulted in delayed clot formation (r - 19.3 +/- 1.5, k - 6.8 +/- 0.6 min) and reduced platelet adhesion and activation, and yielded the highest blood compatibility index score, indicating least thrombogenicity (69.3% +/- 3.2%). Our results suggest that CD34 antibody conjugation significantly improved the hemocompatibility of PAAc-conjugated PCL.
引用
收藏
页码:2485 / 2495
页数:11
相关论文
共 50 条
  • [21] Alginate in cell therapy and tissue engineering applications
    Donnish, M.
    JOURNAL OF PHARMACY AND PHARMACOLOGY, 2005, 57 : S114 - S115
  • [22] Cell-Seeding Techniques in Vascular Tissue Engineering
    Villalona, Gustavo A.
    Udelsman, Brooks
    Duncan, Daniel R.
    McGillicuddy, Edward
    Sawh-Martinez, Rajendra F.
    Hibino, Narutoshi
    Painter, Christopher
    Mirensky, Tamar
    Erickson, Benjamin
    Shinoka, Toshiharu
    Breuer, Christopher K.
    TISSUE ENGINEERING PART B-REVIEWS, 2010, 16 (03) : 341 - 350
  • [23] Stem Cell Sources for Vascular Tissue Engineering and Regeneration
    Bajpai, Vivek K.
    Andreadis, Stelios T.
    TISSUE ENGINEERING PART B-REVIEWS, 2012, 18 (05) : 405 - 425
  • [24] Cell-matrix biology in vascular tissue engineering
    Stephan, Simon
    Ball, Stephen G.
    Williamson, Matthew
    Bax, Daniel V.
    Lomas, Amanda
    Shuttleworth, C. Adrian
    Kielty, Cay M.
    JOURNAL OF ANATOMY, 2006, 209 (04) : 495 - 502
  • [25] Scaffold Engineering with Flavone-Modified Biomimetic Architecture for Vascular Tissue Engineering Applications
    Xie, Chao
    Guo, Ting
    Wang, Wei
    Li, Gang
    Cai, Zhou
    Chen, Shen
    Wang, Xianwei
    Liu, Ziyu
    Wang, Zuyong
    TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2022, 19 (04) : 755 - 767
  • [26] Scaffold Engineering with Flavone-Modified Biomimetic Architecture for Vascular Tissue Engineering Applications
    Chao Xie
    Ting Guo
    Wei Wang
    Gang Li
    Zhou Cai
    Shen Chen
    Xianwei Wang
    Ziyu Liu
    Zuyong Wang
    Tissue Engineering and Regenerative Medicine, 2022, 19 : 755 - 767
  • [27] Copper-Based SURMOFs for Nitric Oxide Generation: Hemocompatibility, Vascular Cell Growth, and Tissue Response
    Zhao, Qian
    Fan, Yonghong
    Zhang, Yu
    Liu, Junfeng
    Li, Weijie
    Weng, Yajun
    ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (08) : 7872 - 7883
  • [28] Multifunctional silk-heparin biomaterials for vascular tissue engineering applications
    Seib, F. Philipp
    Herklotz, Manuela
    Burke, Kelly A.
    Maitz, Manfred F.
    Werner, Carsten
    Kaplan, David L.
    BIOMATERIALS, 2014, 35 (01) : 83 - 91
  • [29] The effects of morphology and composition in electrospun scaffold for vascular tissue engineering applications
    Reid, James
    Mcdonald, Alison
    Callanan, Anthony
    TISSUE ENGINEERING PART A, 2023, 29 (13-14)
  • [30] Surface modification and endothelialization of polyurethane for vascular tissue engineering applications: a review
    Adipurnama, Iman
    Yang, Ming-Chien
    Ciach, Tomasz
    Butruk-Raszeja, Beata
    BIOMATERIALS SCIENCE, 2017, 5 (01) : 22 - 37