Cellular energetics in the preconditioned state -: Protective role for phosphotransfer reactions captured by 18O-assisted 31P NMR

被引:86
作者
Pucar, D
Dzeja, PP
Bast, P
Juranic, N
Macura, S
Terzic, A
机构
[1] Mayo Clin & Mayo Fdn, Dept Med, Div Cardiovasc Dis, Rochester, MN 55905 USA
[2] Mayo Clin & Mayo Fdn, Dept Mol Pharmacol & Expt Therapeut, Div Cardiovasc Dis, Rochester, MN 55905 USA
[3] Mayo Clin & Mayo Fdn, Dept Biochem & Mol Biol, Div Cardiovasc Dis, Rochester, MN 55905 USA
关键词
D O I
10.1074/jbc.M104425200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Cell survival is critically dependent on the preservation of cellular bioenergetics. However, the metabolic mechanisms that confer resistance to injury are poorly understood. Phosphotransfer reactions integrate ATP-consuming with ATP-producing processes and could thereby contribute to the generation of a protective phenotype. Here, we used ischemic preconditioning to induce a stress-tolerant state and O-18-assisted P-31 nuclear magnetic resonance spectroscopy to capture intracellular phosphotransfer dynamics. Preconditioning of isolated perfused hearts triggered a redistribution in phosphotransfer flux with significant increase in creatine kinase and glycolytic rates. High energy phosphoryl fluxes through creatine kinase, adenylate kinase, and glycolysis in preconditioned hearts correlated tightly with post-ischemic functional recovery. This was associated with enhanced metabolite exchange between subcellular compartments, manifested by augmented transfer of inorganic phosphate from cellular ATPases to mitochondrial ATP synthase. Preconditioning-induced energetic remodeling protected cellular ATP synthesis and ATP consumption, improving contractile performance following ischemia-reperfusion insult. Thus, the plasticity of phosphotransfer networks contributes to the effective functioning of the cellular energetic system, providing a mechanism for increased tolerance toward injury.
引用
收藏
页码:44812 / 44819
页数:8
相关论文
共 57 条
[11]   Reduced activity of enzymes coupling ATP-generating with ATP-consuming processes in the failing myocardium [J].
Dzeja, PP ;
Pucar, D ;
Redfield, MM ;
Burnett, JC ;
Terzic, A .
MOLECULAR AND CELLULAR BIOCHEMISTRY, 1999, 201 (1-2) :33-40
[12]   Adenylate kinase: Kinetic behavior in intact cells indicates it is integral to multiple cellular processes [J].
Dzeja, PP ;
Zeleznikar, RJ ;
Goldberg, ND .
MOLECULAR AND CELLULAR BIOCHEMISTRY, 1998, 184 (1-2) :169-182
[13]   Phosphotransfer reactions in the regulation of ATP-sensitive K+ channels [J].
Dzeja, PP ;
Terzic, A .
FASEB JOURNAL, 1998, 12 (07) :523-529
[14]   Reversal of the ATP-liganded state of ATP-sensitive K+ channels by adenylate kinase activity [J].
ElvirMairena, JR ;
Jovanovic, A ;
Gomez, LA ;
Alekseev, AE ;
Terzic, A .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (50) :31903-31908
[15]   Diazoxide-induced cardioprotection requires signaling through a redox-sensitive mechanism [J].
Forbes, RA ;
Steenbergen, C ;
Murphy, E .
CIRCULATION RESEARCH, 2001, 88 (08) :802-809
[16]   Importance of the early alterations of energy metabolism in the induction and the disappearance of ischemic preconditioning in the isolated rat heart [J].
Garnier, A ;
Rossi, A ;
Lavanchy, N .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 1996, 28 (08) :1671-1682
[17]  
Gibbs CL, 1998, ADV EXP MED BIOL, V453, P527
[18]  
Govindaraju V, 2000, NMR BIOMED, V13, P129, DOI 10.1002/1099-1492(200005)13:3<129::AID-NBM619>3.0.CO
[19]  
2-V
[20]  
Gross GJ, 2000, BASIC RES CARDIOL, V95, P280, DOI 10.1007/s003950050004