Biomolecular surface engineering of pancreatic islets with thrombomodulin

被引:31
|
作者
Wilson, John T. [1 ,2 ,3 ]
Haller, Carolyn A. [1 ]
Qu, Zheng [2 ,3 ]
Cui, Wanxing [1 ]
Urlam, Murali K. [1 ]
Chaikof, Elliot L. [1 ,2 ,3 ,4 ]
机构
[1] Emory Univ, Sch Med, Dept Surg, Atlanta, GA 30322 USA
[2] Georgia Inst Technol, Wallace H Coulter Dept Biomed Engn, Atlanta, GA 30322 USA
[3] Emory Univ, Atlanta, GA 30322 USA
[4] Georgia Inst Technol, Sch Chem & Biomol Engn, Atlanta, GA 30322 USA
基金
美国国家卫生研究院;
关键词
Islet transplantation; Thrombomodulin; Cell surface engineering; Staudinger ligation; ACTIVATED PROTEIN-C; TISSUE FACTOR; ENDOTHELIAL-CELLS; GENE-EXPRESSION; IFN-GAMMA; RAT-LIVER; TRANSPLANTATION; INFLAMMATION; BLOOD; LANGERHANS;
D O I
10.1016/j.actbio.2010.01.027
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Islet transplantation has emerged as a promising treatment for Type 1 diabetes, but its clinical impact remains limited by early islet destruction mediated by prothrombotic and innate inflammatory responses elicited upon transplantation. Thrombomodulin (TM) acts as an important regulator of thrombosis and inflammation through its capacity to channel the catalytic activity of thrombin towards generation of activated protein C (APC), a potent anticoagulant and anti-inflammatory agent. We herein describe a novel biomolecular strategy for re-engineering the surface of pancreatic islets with TM. A biosynthetic approach was employed to generate recombinant human TM (rTM) bearing a C-terminal azide group, which facilitated site-specific biotinylation of rTM through Staudinger ligation. Murine pancreatic islets were covalently biotinylated through targeting of cell surface amines and aldehydes and both islet viability and the surface density of streptavidin were maximized through optimization of biotinylation conditions. rTM was immobilized on islet surfaces through streptavidin-biotin interactions, resulting in a nearly threefold increase in the catalytic capacity of islets to generate APC. (C) 2010 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:1895 / 1903
页数:9
相关论文
共 50 条
  • [31] Amylin in pancreatic islets and pancreatic endocrine neoplasms
    Tomita, T
    PATHOLOGY INTERNATIONAL, 2003, 53 (09) : 591 - 595
  • [32] Biomolecular engineering for nanobio/bionanotechnology
    Nagamune, Teruyuki
    NANO CONVERGENCE, 2017, 4
  • [33] Biomolecular engineering for nanobio/bionanotechnology
    Teruyuki Nagamune
    Nano Convergence, 4
  • [34] Engineering controllable biomolecular motors
    Bryant, Z.
    EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS, 2017, 46 : S48 - S48
  • [36] Biomolecular engineering and drug development
    Nam D.-H.
    Ryu D.D.Y.
    Biotechnology and Bioprocess Engineering, 1999, 4 (2) : 83 - 92
  • [37] Recent progress in biomolecular engineering
    Ryu, DDY
    Nam, DH
    BIOTECHNOLOGY PROGRESS, 2000, 16 (01) : 2 - 16
  • [38] The Many Applications of Biomolecular Engineering
    Levesque-Tremblay, Gabriel
    CHEMICAL ENGINEERING PROGRESS, 2017, 113 (10) : 30 - 30
  • [39] Tolerance induction by surface immobilization of Jagged-1 for immunoprotection of pancreatic islets
    Izadi, Zhila
    Hajizadeh-Saffar, Ensiyeh
    Hadjati, Jamshid
    Habibi-Anbouhi, Mandi
    Ghanian, Mohammad Hossein
    Sadeghi-Abandansari, Hamid
    Ashtiani, Mohammad Kazemi
    Samsonchi, Zakieh
    Raoufi, Mohammad
    Moazenchi, Maedeh
    Izadi, Mahmoud
    Nejad, Anava Sadat Sadr Hashemi
    Namdari, Haideh
    Tahamtani, Yaser
    Ostad, Seyed Nasser
    Akbari-Javar, Hamid
    Baharvand, Hossein
    BIOMATERIALS, 2018, 182 : 191 - 201
  • [40] Novel Approach for Local Delivery of GLP-1 to the Surface of Pancreatic Islets
    Scavone, Andrew C.
    Kizilel, Seda
    Liu, Xiang
    Nothias, Jean-Manuel
    Ostrega, Diane
    Millis, J. Michael
    Witkowski, Piotr
    DIABETES, 2010, 59 : A130 - A130