Local bradykinin formation is controlled by glycosaminoglycans

被引:86
作者
Renné, T
Schuh, K
Müller-Esterl, W
机构
[1] Univ Wurzburg, Inst Clin Biochem & Pathobiochem, D-97080 Wurzburg, Germany
[2] Univ Frankfurt, Inst Biochem 2, D-6000 Frankfurt, Germany
关键词
D O I
10.4049/jimmunol.175.5.3377
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Bradykinin is a potent inflammatory mediator that induces vasodilation, vascular leakage, and pain sensations. This short-lived peptide hormone is liberated from its large precursor protein high molecular weight kininogen (HK) through the contact system cascade involving coagulation factor XII and plasma kallikrein. Although bradykinin release is well established in vitro, the factors and mechanisms controlling bradykinin generation in vivo are still incompletely understood. In this study we demonstrate that binding of HK to glycosaminoglycans (GAGs) of the heparan and chondroitin sulfate type efficiently interferes with bradykinin release in plasma and on endothelial surfaces. Proteolytic bradykinin production on endothelial cells is restored following degradation of cell surface GAG through heparinase. Alternatively, application of HK fragments D3 or light chain, which compete with uncleaved HK for, cell binding, promote kininogen proteolysis and bradykinin release. Intravital microscopy revealed that HK fragments increase bradykinin-mediated mesentery microvascular leakage. Topical application of D3 or light chain enhanced bradykinin generation and edema formation in the mouse skin. Our results demonstrate that bradykinin formation is controlled by HK binding to and detachment from GAGs. Separation of the precursor from cell surfaces is a prerequisite for its efficient proteolytic processing. By this means, fragments arising from HK processing propagate bradykinin generation, revealing a novel regulatory level for the kallikrein-kinin system.
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页码:3377 / 3385
页数:9
相关论文
共 71 条
[1]   Rho and rho kinase modulation of barrier properties: cultured endothelial cells and intact microvessels of rats and mice [J].
Adamson, RH ;
Curry, FE ;
Adamson, G ;
Liu, B ;
Jiang, Y ;
Aktories, K ;
Barth, H ;
Daigeler, A ;
Golenhofen, N ;
Ness, W ;
Drenckhahn, D .
JOURNAL OF PHYSIOLOGY-LONDON, 2002, 539 (01) :295-308
[2]  
Bachvarov DR, 2001, J PHARMACOL EXP THER, V297, P19
[3]   Functions of cell surface heparan sulfate proteoglycans [J].
Bernfield, M ;
Götte, M ;
Park, PW ;
Reizes, O ;
Fitzgerald, ML ;
Lincecum, J ;
Zako, M .
ANNUAL REVIEW OF BIOCHEMISTRY, 1999, 68 :729-777
[4]  
BHOOLA KD, 1992, PHARMACOL REV, V44, P1
[5]  
BJORK I, 1989, BIOCHEMISTRY-US, V28, P1213
[6]   Determination of bradykinin B2 receptor in vivo phosphorylation sites and their role in receptor function [J].
Blaukat, A ;
Pizard, A ;
Breit, A ;
Wernstedt, C ;
Alhenc-Gelas, F ;
Müller-Esterl, W ;
Dikic, I .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (44) :40431-40440
[7]   Histidine-proline-rich glycoprotein as a plasma pH sensor - Modulation of its interaction with glycosaminoglycans by pH and metals [J].
Borza, DB ;
Morgan, WT .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (10) :5493-5499
[8]   Platelet-activating factor and kinin-dependent vascular leakage as a novel functional activity of the soluble terminal complement complex [J].
Bossi, F ;
Fischetti, F ;
Pellis, V ;
Bulla, R ;
Ferrero, E ;
Mollnes, TE ;
Regoli, D ;
Tedesco, F .
JOURNAL OF IMMUNOLOGY, 2004, 173 (11) :6921-6927
[9]   Contact system: A vascular biology modulator with anticoagulant, Profibrinolytic, antiadhesive, and proinflammatory attributes [J].
Colman, RW ;
Schmaier, AH .
BLOOD, 1997, 90 (10) :3819-3843
[10]   Interactions of antithrombin and proteins in the plasma contact activation system with immobilized functional heparin [J].
Cornelius, RM ;
Sanchez, J ;
Olsson, P ;
Brash, JL .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2003, 67A (02) :475-483