Do modulators of the mitochondrial KATP channel change the mitochondria in situ?

被引:57
作者
Ovide-Bordeaux, S [1 ]
Ventura-Clapier, R [1 ]
Veksler, V [1 ]
机构
[1] Univ Paris Sud, Fac Pharm, INSERM U446, Lab Cardiol Cellulaire & Mol, F-92296 Chatenay Malabry, France
关键词
D O I
10.1074/jbc.M005772200
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
Pharmacological opening of mitochondrial cardiac ATP-sensitive potassium (K-ATP) channels has the chance to be a promising but still controversial cardioprotective mechanism. Physiological roles of mitochondrial K-ATP, channels in the myocardium remain unclear. We studied the effects of diazoxide, a specific opener of these channels, on the function of rat mitochondria in. situ in saponin-permeabilized fibers using an ionic medium that mimics the cytosol, In the presence of NADH-producing substrates (malate + glutamate), neither 100 muM diazoxide nor 100 muM glibenclamide (a K-ATP channel blocker) changed the mitochondrial respiration in the absence or presence of ADP, Because the K-ATP channel function could be modified by changes in adenine nucleotide concentrations near the mitochondria, we studied the effects of diazoxide and glibenclamide on the functional activity of mitochondrial kinases, Both diazoxide and glibenclamide did not change the in situ ADP sensitivity in the presence or absence of creatine (apparent IE,values for ADP were, respectively, 59 +/- 9 and 379 +/- 45 muM) Similarly, stimulation of the mitochondrial respiration with AMP in the presence of ATP due to adenylate kinase activity was not affected by the modulators of K-ATP channels, However, when succinate was used as substrate, diazoxide significantly inhibited basal respiration by 22% and maximal respiration by 24%. Thus, at a cardioprotective dose, the main functional effect of diazoxide depends on respiratory substrates and seems not to be related to K-ATP channel activity.
引用
收藏
页码:37291 / 37295
页数:5
相关论文
共 31 条
[1]   Signal transduction in ischemic preconditioning:: The role of kinases and mitochondrial KATP channels [J].
Baines, CP ;
Cohen, MV ;
Downey, JM .
JOURNAL OF CARDIOVASCULAR ELECTROPHYSIOLOGY, 1999, 10 (05) :741-754
[2]   Ischemic preconditioning depends on interaction between mitochondrial KATP channels and actin cytoskeleton [J].
Baines, CP ;
Liu, GS ;
Birincioglu, M ;
Critz, SD ;
Cohen, MV ;
Downey, JM .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 1999, 276 (04) :H1361-H1368
[3]   Phosphotransfer reactions in the regulation of ATP-sensitive K+ channels [J].
Dzeja, PP ;
Terzic, A .
FASEB JOURNAL, 1998, 12 (07) :523-529
[4]  
Garlid KD, 1997, CIRC RES, V81, P1072
[5]   Cation transport in mitochondria - The potassium cycle [J].
Garlid, KD .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 1996, 1275 (1-2) :123-126
[6]   The mitochondrial K-ATP channel as a receptor for potassium channel openers [J].
Garlid, KD ;
Paucek, P ;
YarovYarovoy, V ;
Sun, XC ;
Schindler, PA .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (15) :8796-8799
[7]   Regulation of mitochondrial KATP channel by redox agents [J].
Grigoriev, SM ;
Skarga, YY ;
Mironova, GD ;
Marinov, BS .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 1999, 1410 (01) :91-96
[8]   Direct effects of diazoxide on mitochondria in pancreatic B-cells and on isolated liver mitochondria [J].
Grimmsmann, T ;
Rustenbeck, I .
BRITISH JOURNAL OF PHARMACOLOGY, 1998, 123 (05) :781-788
[9]   Sarcolemmal versus mitochondrial ATP-sensitive K+ channels and myocardial preconditioning [J].
Gross, GJ ;
Fryer, RM .
CIRCULATION RESEARCH, 1999, 84 (09) :973-979
[10]   CARDIOPROTECTION WITH THE K-ATP OPENER CROMAKALIM IS NOT CORRELATED WITH ISCHEMIC MYOCARDIAL ACTION-POTENTIAL DURATION [J].
GROVER, GJ ;
DALONZO, AJ ;
PARHAM, CS ;
DARBENZIO, RB .
JOURNAL OF CARDIOVASCULAR PHARMACOLOGY, 1995, 26 (01) :145-152