Prolonged AMPK Activation Increases the Expression of Fatty Acid Transporters in Cardiac Myocytes and Perfused Hearts

被引:12
作者
Adrian Chabowski
Iman Momken
Susan L. M. Coort
Jorge Calles-Escandon
Narendra N. Tandon
Jan F. C. Glatz
Joost J. F. P. Luiken
Arend Bonen
机构
[1] University of Guelph,Department of Human Health and Nutritional Sciences
[2] Maastricht University,Department of Molecular Genetics
[3] Wake Forest University School of Medicine and Baptist Medical Center,Section of Endocrinology and Metabolism
[4] Thrombosis Research Laboratory,undefined
[5] Otsuka Maryland Medicinal Laboratories,undefined
来源
Molecular and Cellular Biochemistry | 2006年 / 288卷
关键词
FAT/CD36; FABPpm; fatty acid transport; fatty acid oxidation; giant vesicles; perfusion;
D O I
暂无
中图分类号
学科分类号
摘要
Recently, fatty acid transport across the plasma membrane has been shown to be a key process that contributes to the regulation of fatty acid metabolism in the heart. Since AMP kinase activation by 5-aminoimidazole-4-carboxamide-1-β-D-ribofuranoside (AICAR) stimulates fatty acid oxidation, as well as the expression of selected proteins involved with energy provision, we examined (a) whether AICAR induced the expression of the fatty acid transporters FABPpm and FAT/CD36 in cardiac myocytes and in perfused hearts and (b) the signaling pathway involved. Incubation of cardiac myocytes with AICAR increased the protein expression of the fatty acid transporter FABPpm after 90 min (+27%, P < 0.05) and this protein remained stably overexpressed until 180 min. Similarly, FAT/CD36 protein expression was increased after 60 min (+38%, P < 0.05) and remained overexpressed thereafter. Protein overexpression, which occurred via transcriptional mechanisms, was dependent on the AICAR concentration, with optimal induction occurring at AICAR concentrations 1–5 mM for FABPpm and at 2–8 mM for FAT/CD36. The AICAR (2 h, 2 mM AICAR) effects on FABPpm and FAT/CD36 protein expression were similar in perfused hearts and in cardiac myocytes. AICAR also induced the plasmalemmal content of FAT/CD36 (+49%) and FABPpm (+42%) (P < 0.05). This was accompanied by a marked increase in the rate of palmitate transport (2.5 fold) into giant sarcolemmal vesicles, as well as by increased rates of palmitate oxidation in cardiac myocytes. When the AICAR-induced AMPK phosphorylation was blocked, neither FAT/CD36 nor FABPpm were overexpressed, nor were palmitate uptake and oxidation increased. This study has revealed that AMPK activation stimulates the protein expression of both fatty acid transporters, FAT/CD36 and FABPpm in (a) time- and (b) dose-dependent manner via (c) the AMPK signaling pathway. AICAR also (d) increased the plasmalemmal content of FAT/CD36 and FABPm, thereby (e) increasing the rates of fatty acid transport. Thus, activation of AMPK is a key mechanism regulating the expression as well as the plasmalemmal localization of fatty acid transporters.
引用
收藏
页码:201 / 212
页数:11
相关论文
共 352 条
[1]
van der Vusse GJ(1992)Fatty acid homeostasis in the normoxic and ischemic heart Physiol Rev 72 881-940
[2]
Glatz JFC(1996)Characterization of 5′AMP-activated protein kinase activity in the heart and its role in inhibiting acetyl-CoA carboxylase during reperfusion following ischemia Biochim Biophys Acta 1301 67-75
[3]
Stam HCG(2001)Regulation of myocardial fatty acid oxidation by substrate supply Am J Physiol Heart Circ Physiol 281 H1561-H1567
[4]
Reneman RS(1993)Malonyl-CoA metabolism in cardiac myocytes and its relevance to the control of fatty acid oxidation Biochem J 295 61-66
[5]
Kudo N(1995)High rates of fatty acid oxidation during reperfusion of ischemic hearts are associated with a decrease in malonyl-CoA levels due to an increase in 5′-AMP-activated protein kinase inhibition of acetyl-CoA carboxylase J Biol Chem 270 17513-17520
[6]
Gillespie JG(1994)Acetyl-CoA carboxylase involvement in the rapid maturation of fatty acid oxidation in the newborn rabbit heart J Biol Chem 269 25871-25878
[7]
Kung L(1998)Malonyl CoA, long chain fatty acyl CoA and insulin resistance in skeletal muscle J Basic Clin Physiol Pharmacol 9 295-308
[8]
Witters LA(1998)Malonyl CoA as a metabolic switch and a regulator of insulin sensitivity Adv Exp Med Biol 441 263-270
[9]
Schulz R(1999)Malonyl CoA, fuel sensing and insulin resistance Am J Physiol Endocrinol Metab 276 E1-E18
[10]
Clanachan AS(2003)Potential mechanisms and consequences of cardiac triacylglycerol accumulation in insulin-resistant rats Am J Physiol Endocrinol Metab 284 E923-E920