New insights concerning the role of carnitine in the regulation of fuel metabolism in skeletal muscle

被引:306
作者
Stephens, Francis B. [1 ]
Constantin-Teodosiu, Dumitru [1 ]
Greenhaff, Paul L. [1 ]
机构
[1] Univ Nottingham, Sch Med, Queens Med Ctr, Sch Biomed Sci,Ctr Integrated Syst Biol & Med, Nottingham NG7 2UH, England
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2007年 / 581卷 / 02期
关键词
D O I
10.1113/jphysiol.2006.125799
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
In skeletal muscle, carnitine plays an essential role in the translocation of long-chain fatty-acids into the mitochondrial matrix for subsequent beta-oxidation, and in the regulation of the mitochondrial acetyl-CoA/CoASH ratio. Interest in these vital metabolic roles of carnitine in skeletal muscle appears to have waned over the past 25 years. However, recent research has shed new light on the importance of carnitine as a regulator of muscle fuel selection. It has been established that muscle free carnitine availability may be limiting to fat oxidation during high intensity submaximal exercise. Furthermore, increasing muscle total carnitine content in resting healthy humans (via insulin-mediated stimulation of muscle carnitine transport) reduces muscle glycolysis, increases glycogen storage and is accompanied by an apparent increase in fat oxidation. By increasing muscle pyruvate dehydrogenase complex (PDC) activity and acetylcarnitine content at rest, it has also been established that PDC flux and acetyl group availability limits aerobic ATP re-synthesis at the onset of exercise (the acetyl group deficit). Thus, carnitine plays a vital role in the regulation of muscle fuel metabolism. The demonstration that its availability can be readily manipulated in humans, and impacts on physiological function, will result in renewed business and scientific interest in this compound.
引用
收藏
页码:431 / 444
页数:14
相关论文
共 111 条
[1]  
Achten J, 2004, INT J SPORTS MED, V25, P32, DOI 10.1055/s-2003-45231
[2]   POSSIBLE ROLE OF CARNITINE AND CARNITINE ACETYL-TRANSFERASE IN CONTRACTING FROG SKELETAL-MUSCLE [J].
ALKONYI, I ;
KERNER, J ;
SANDOR, A .
FEBS LETTERS, 1975, 52 (02) :265-268
[3]  
ANGELINI A, 1993, DRUG EXP CLIN RES, V19, P219
[4]   CARNITINE DEFICIENCY OF SKELETAL-MUSCLE - REPORT OF A TREATED CASE [J].
ANGELINI, C ;
LUCKE, S ;
CANTARUTTI, F .
NEUROLOGY, 1976, 26 (07) :633-637
[5]   Does exercise training interfere with the effects of L-carnitine supplementation? [J].
Bacurau, RFP ;
Navarro, F ;
Bassit, RA ;
Meneguello, MO ;
Santos, RVT ;
Almeida, ALR ;
Rosa, LFBPC .
NUTRITION, 2003, 19 (04) :337-341
[6]   EFFECT OF L-CARNITINE SUPPLEMENTATION ON MUSCLE AND BLOOD CARNITINE CONTENT AND LACTATE ACCUMULATION DURING HIGH-INTENSITY SPRINT CYCLING [J].
BARNETT, C ;
COSTILL, DL ;
VUKOVICH, MD ;
COLE, KJ ;
GOODPASTER, BH ;
TRAPPE, SW ;
FINK, WJ .
INTERNATIONAL JOURNAL OF SPORT NUTRITION, 1994, 4 (03) :280-288
[7]   Fatty acid oxidation and the regulation of malonyl-CoA in human muscle [J].
Båvenholm, PN ;
Pigon, J ;
Saha, AK ;
Ruderman, NB ;
Efendic, S .
DIABETES, 2000, 49 (07) :1078-1083
[8]   Characterization of L-carnitine transport into rat skeletal muscle plasma membrane vesicles [J].
Berardi, S ;
Stieger, B ;
Hagenbuch, B ;
Carafoli, E ;
Krähenbühl, S .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 2000, 267 (07) :1985-1994
[9]   Identification of fatty acid translocase on human skeletal muscle mitochondrial membranes: essential role in fatty acid oxidation [J].
Bezaire, V ;
Bruce, CR ;
Heigenhauser, GJF ;
Tandon, NN ;
Glatz, JFC ;
Luiken, JJJF ;
Bonen, A ;
Spriet, LL .
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2006, 290 (03) :E509-E515
[10]  
Bonnefont Jean-Paul, 2004, Molecular Aspects of Medicine, V25, P495, DOI 10.1016/j.mam.2004.06.004