Isoflurane preconditioning uncouples mitochondria and protects against hypoxia-reoxygenation

被引:73
作者
Ljubkovic, Marko
Mio, Yasushi
Marinovic, Jasna
Stadnicka, Anna
Warltier, David C.
Bosnjak, Zeljko J.
Bienengraeber, Martin
机构
[1] Department of Anesthesiology, Medical College of Wisconsin, Milwaukee, WI
[2] Department of Physiology, Medical College of Wisconsin, Milwaukee, WI
[3] Department of Pharmacology and Toxicology, Medical College of Wisconsin, Milwaukee, WI
[4] Dept. of Anesthesiology, Medical College of Wisconsin, Milwaukee, WI 53226
来源
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY | 2007年 / 292卷 / 05期
关键词
cardioprotection; uncoupling;
D O I
10.1152/ajpcell.00221.2006
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Ischemic cardiac injury can be substantially alleviated by exposing the heart to pharmacological agents such as volatile anesthetics before occurrence of ischemia-reperfusion. A hallmark of this preconditioning phenomenon is its memory, when cardioprotective effects persist even after removal of preconditioning stimulus. Since numerous studies pinpoint mitochondria as crucial players in protective pathways of preconditioning, the aim of this study was to investigate the effects of preconditioning agent isoflurane on the mitochondrial bioenergetic phenotype. Endogenous flavoprotein fluorescence, an indicator of mitochondrial redox state, was elevated to 195 ± 16% of baseline upon isoflurane application in intact cardiomyocytes, indicating more oxidized state of mitochondria. Isoflurane treatment also elicited partial dissipation of mitochondrial transmembrane potential, which remained depolarized even after anesthetic withdrawal (tetramethyl-rhodamine fluorescence intensity declined to 83 ± 3 and 81 ± 7% of baseline during isoflurane exposure and washout, respectively). Mild uncoupling, with preserved ATP synthesis, was also detected in mitochondria that were isolated from animals that had been previously preconditioned by isoflurane in vivo, revealing its memory nature. These mitochondria, after exposure to hypoxia and reoxygenation, exhibited better preserved respiration and ATP synthesis compared with mitochondria from nonpreconditioned animals. Partial mitochondrial depolarization was paralleled by a diminished Ca2+ uptake into isoflurane-treated mitochondria, as indicated by the reduced increment in rhod-2 fluorescence when mitochondria were challenged with increased Ca2+ (180 ± 24 vs. 258 ± 14% for the control). In conclusion, isoflurane preconditioning elicits partial mitochondrial uncoupling and reduces mitochondrial Ca2+ uptake. These effects are likely to reduce the extent of the mitochondrial damage after the hypoxic stress. Copyright © 2007 the American Physiological Society.
引用
收藏
页码:C1583 / C1590
页数:8
相关论文
共 56 条
[1]  
Belhomme D., Peynet J., Louzy M., Launay J.M., Kitakaze M., Menasche P., Evidence for preconditioning by isoflurane in coronary artery bypass graft surgery, Circulation, 100, (1999)
[2]  
Bienengraeber M., Ozcan C., Terzic A., Stable transfection of UCP1 confers resistance to hypoxia/reoxygenation in a heart-derived cell line, J Mol Cell Cardiol, 35, pp. 861-865, (2003)
[3]  
Bienengraeber M.W., Weihrauch D., Kersten J.R., Pagel P.S., Warltier D.C., Cardioprotection by volatile anesthetics, Vascul Pharmacol, 42, pp. 243-252, (2005)
[4]  
Cason B.A., Gamperl A.K., Slocum R.E., Hickey R.F., Anesthetic-induced preconditioning: Previous administration of isoflurane decreases myocardial infarct size in rabbits, Anesthesiology, 87, pp. 1182-1190, (1997)
[5]  
Chance B., Salkovitz I.A., Kovach A.G., Kinetics of mitochondrial flavoprotein and pyridine nucleotide in perfused heart, Am J Physiol, 223, pp. 207-218, (1972)
[6]  
Considine M.J., Goodman M., Echtay K.S., Laloi M., Whelan J., Brand M.D., Sweetlove L.J., Superoxide stimulates a proton leak in potato mitochondria that is related to the activity of uncoupling protein, J Biol Chem, 278, pp. 22298-22302, (2003)
[7]  
Costa A.D., Quinlan C.L., Andrukhiv A., West I.C., Jaburek M., Garlid K.D., The direct physiological effects of mitoK<sub>ATP</sub> opening on heart mitochondria, Am J Physiol Heart Circ Physiol, 290, (2006)
[8]  
Crompton M., The mitochondrial permeability transition pore and its role in cell death, Biochem J, 341, pp. 233-249, (1999)
[9]  
Di Lisa F., Bernardi P., Mitochondrial function as a determinant of recovery or death in cell response to injury, Mol Cell Biochem, 184, pp. 379-391, (1998)
[10]  
Dos Santos P., Laclau M.N., Boudina S., Garlid K.D., Alterations of the bioenergetics systems of the cell in acute and chronic myocardial ischemia, Mol Cell Biochem, 256-257, pp. 157-166, (2004)