HIF-1-dependent repression of adenosine kinase attenuates hypoxia-induced vascular leak

被引:173
作者
Morote-Garcia, Julio C. [2 ]
Rosenberger, Peter [2 ]
Kuhlicke, Johannes [2 ]
Eltzschig, Holger K. [1 ]
机构
[1] Univ Colorado, Hlth Sci Ctr, Dept Anesthesiol & Perioperat Med, Mucosal Inflammat Program, Denver, CO 80262 USA
[2] Tubingen Univ Hosp, Dept Anesthesiol & Intens Care Med, Tubingen, Germany
关键词
D O I
10.1182/blood-2007-11-126763
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Extracellular adenosine has been implicated in vascular adaptation to hypoxia. Based on the observation that increases in intracellular adenosine can effectively elevate extracellular adenosine, we studied the contribution of adenosine kinase (AK, intracellular conversion of adenosine to adenosine monophosphate [AMP]) to vascular adenosine responses. Initial in vitro studies of ambient hypoxia revealed prominent repression of endothelial AK transcript (85% +/- 2% reduction), protein, and function. Transcription factor binding assays and hypoxia inducible factor 1-alpha, (HIF-1 alpha) loss- and gain-of-function studies suggested a role for HIF-1 alpha in transcriptional repression of AK. Moreover, repression of AK by ambient hypoxia was abolished in conditional HIF-1 alpha mutant mice in vivo. Studies of endothelial barrier function revealed that inhibition or siRNA repression of AK is associated with enhanced adenosine-dependent barrier responses in vitro. Moreover, in vivo studies of vascular barrier function demonstrated that AK inhibition with 5'-iodotubericidin (1 mg/kg prior to hypoxia) significantly attenuated hypoxia-induced vascular leakage in multiple organs and reduced hypoxia-associated increases in lung water. Taken together, our data reveal a critical role of AK in modulating vascular adenosine responses and suggest pharmacologic inhibitors of AK in the treatment of conditions associated with hypoxia-induced vascular leakage (eg, sepsis or acute lung injury).
引用
收藏
页码:5571 / 5580
页数:10
相关论文
共 34 条
[1]   Prolyl hydroxylase-1 negatively regulates IκB kinase-β, giving insight into hypoxia-induced NFκB activity [J].
Cummins, Eoin P. ;
Berra, Edurne ;
Comerford, Katrina M. ;
Ginouves, Amandine ;
Fitzgerald, Kathleen T. ;
Seeballuck, Fergal ;
Godson, Catherine ;
Nielsen, Jens E. ;
Moynagh, Paul ;
Pouyssegur, Jacques ;
Taylor, Cormac T. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (48) :18154-18159
[2]   Hypoxia-responsive transcription factors [J].
Cummins, EP ;
Taylor, CT .
PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 2005, 450 (06) :363-371
[3]   Hypoxia-induced inhibition of adenosine kinase potentiates cardiac adenosine release [J].
Decking, UKM ;
Schlieper, G ;
Kroll, K ;
Schrader, J .
CIRCULATION RESEARCH, 1997, 81 (02) :154-164
[4]   Cardioprotection by ecto-5′-nucleotidase (CD73) and A2B adenosine receptors [J].
Eckle, Tobias ;
Krahn, Thomas ;
Grenz, Almut ;
Koehler, David ;
Mittelbronn, Michel ;
Ledent, Catherine ;
Jacobson, Marlene A. ;
Osswald, Hartmut ;
Thompson, Linda F. ;
Unertl, Klaus ;
Eltzschig, Holger K. .
CIRCULATION, 2007, 115 (12) :1581-1590
[5]   Endogenous adenosine produced during hypoxia attenuates neutrophil accumulation: coordination by extracellular nucleotide metabolism [J].
Eltzschig, HK ;
Thompson, LF ;
Karhausen, J ;
Cotta, RJ ;
Ibla, JC ;
Robson, SC ;
Colgan, SP .
BLOOD, 2004, 104 (13) :3986-3992
[6]   HIF-1-dependent repression of equilibrative nucleoside transporter (ENT) in hypoxia [J].
Eltzschig, HK ;
Abdulla, P ;
Hoffman, E ;
Hamilton, KE ;
Daniels, D ;
Schönfeld, C ;
Löffler, M ;
Reyes, G ;
Duszenko, M ;
Karhausen, J ;
Robinson, A ;
Westerman, KA ;
Coe, IR ;
Colgan, SP .
JOURNAL OF EXPERIMENTAL MEDICINE, 2005, 202 (11) :1493-1505
[7]   Coordinated adenine nucleotide phosphohydrolysis and nucleoside signaling in posthypoxic endothelium:: Role of ectonucleotidases and adenosine A2B receptors [J].
Eltzschig, HK ;
Ibla, JC ;
Furuta, GT ;
Leonard, MO ;
Jacobson, KA ;
Enjyoji, K ;
Robson, SC ;
Colgan, SP .
JOURNAL OF EXPERIMENTAL MEDICINE, 2003, 198 (05) :783-796
[8]  
Eltzschig HK, 2006, METH MOL B, V341, P73
[9]   Endothelial catabolism of extracellular adenosine during hypoxia: the role of surface adenosine deaminase and CD26 [J].
Eltzschig, Holger K. ;
Faigle, Marion ;
Knapp, Simone ;
Karhausen, Jorn ;
Ibla, Juan ;
Rosenberger, Peter ;
Odegard, Kirsten C. ;
Laussen, Peter C. ;
Thompson, Linda F. ;
Colgan, Sean P. .
BLOOD, 2006, 108 (05) :1602-1610
[10]   INHIBITION OF ADENOSINE METABOLISM INCREASES MYOCARDIAL INTERSTITIAL ADENOSINE CONCENTRATIONS AND CORONARY FLOW [J].
ELY, SW ;
MATHERNE, GP ;
COLEMAN, SD ;
BERNE, RM .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 1992, 24 (11) :1321-1332