Literature DB >> 12065578

Coordinate regulation of malonyl-CoA decarboxylase, sn-glycerol-3-phosphate acyltransferase, and acetyl-CoA carboxylase by AMP-activated protein kinase in rat tissues in response to exercise.

Haejoe Park1, Virendar K Kaushik, Scarlet Constant, Marc Prentki, Ewa Przybytkowski, Neil B Ruderman, Asish K Saha.   

Abstract

UNLABELLED: Changes in the concentration of malonyl-CoA in many tissues have been related to alterations in the activity of acetyl-CoA carboxylase (ACC), the rate-limiting enzyme in its formation. In contrast, little is known about the physiological role of malonyl-CoA decarboxylase (MCD), an enzyme responsible for malonyl-CoA catabolism. In this study, we examined the effects of voluntary exercise on MCD activity in rat liver, skeletal muscle, and adipose tissue. In addition, the activity of sn-glycerol-3-phosphate acyltransferase (GPAT), which like MCD and ACC can be regulated by AMP-activated protein kinase (AMPK), was assayed. Thirty min after the completion of a treadmill run, MCD activity was increased approximately 2-fold, malonyl-CoA levels were reduced, and ACC and GPAT activities were diminished by 50% in muscle and liver. These events appeared to be mediated via activation of AMPK since: 1) AMPK activity was concurrently increased by exercise in both tissues; 2) similar findings were observed after the injection of 5-amino 4 imidazole carboxamide, an AMPK activator; 3) changes in the activity of GPAT and ACC paralleled that of MCD; and 4) the increase in MCD activity in muscle was reversed in vitro by incubating immunoprecipitated enzyme from the exercised muscle with protein phosphatase 2A, and it was reproduced by incubating immunopurified MCD from resting muscle with purified AMPK. An unexpected finding was that exercise caused similar changes in the activities of ACC, MCD, GPAT, and AMPK and the concentration of malonyl-CoA in adipose tissue. IN
CONCLUSION: MCD, GPAT, and ACC are coordinately regulated by AMPK in liver and adipose tissue in response to exercise, and except for GPAT, also in muscle. The results suggest that AMPK activation plays a major role in regulating lipid metabolism in many cells following exercise. They also suggest that in each of them, it acts to increase fatty acid oxidation and decrease its esterification.

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Year:  2002        PMID: 12065578     DOI: 10.1074/jbc.M201692200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  106 in total

1.  Enhanced muscle fat oxidation and glucose transport by ACRP30 globular domain: acetyl-CoA carboxylase inhibition and AMP-activated protein kinase activation.

Authors:  Eva Tomas; Tsu-Shuen Tsao; Asish K Saha; Heather E Murrey; Cheng cheng Zhang Cc; Samar I Itani; Harvey F Lodish; Neil B Ruderman
Journal:  Proc Natl Acad Sci U S A       Date:  2002-11-27       Impact factor: 11.205

Review 2.  Apelin and insulin resistance: another arrow for the quiver?

Authors:  Shiming Xu; Philip S Tsao; Patrick Yue
Journal:  J Diabetes       Date:  2011-09       Impact factor: 4.006

3.  Augmenting energy expenditure by mitochondrial uncoupling: a role of AMP-activated protein kinase.

Authors:  Susanne Klaus; Susanne Keipert; Martin Rossmeisl; Jan Kopecky
Journal:  Genes Nutr       Date:  2011-12-04       Impact factor: 5.523

4.  AMPK protects proximal tubular cells from stress-induced apoptosis by an ATP-independent mechanism: potential role of Akt activation.

Authors:  Wilfred Lieberthal; Leiqing Zhang; Vimal A Patel; Jerrold S Levine
Journal:  Am J Physiol Renal Physiol       Date:  2011-09-28

Review 5.  Exercise and the Regulation of Hepatic Metabolism.

Authors:  Elijah Trefts; Ashley S Williams; David H Wasserman
Journal:  Prog Mol Biol Transl Sci       Date:  2015-08-05       Impact factor: 3.622

Review 6.  Delineating the role of alterations in lipid metabolism to the pathogenesis of inherited skeletal and cardiac muscle disorders: Thematic Review Series: Genetics of Human Lipid Diseases.

Authors:  Harjot K Saini-Chohan; Ryan W Mitchell; Frédéric M Vaz; Teresa Zelinski; Grant M Hatch
Journal:  J Lipid Res       Date:  2011-11-07       Impact factor: 5.922

Review 7.  Molecular system bioenergetics: regulation of substrate supply in response to heart energy demands.

Authors:  Valdur Saks; Roland Favier; Rita Guzun; Uwe Schlattner; Theo Wallimann
Journal:  J Physiol       Date:  2006-09-28       Impact factor: 5.182

8.  Increased oxidative stress is associated with balanced increases in hepatocyte apoptosis and proliferation in glycerol-3-phosphate acyltransferase-1 deficient mice.

Authors:  Linda E Hammond; Craig D Albright; Lihua He; Ivan Rusyn; Steven M Watkins; Scott D Doughman; John J Lemasters; Rosalind A Coleman
Journal:  Exp Mol Pathol       Date:  2006-12-28       Impact factor: 3.362

9.  Leptinomimetic effects of the AMP kinase activator AICAR in leptin-resistant rats: prevention of diabetes and ectopic lipid deposition.

Authors:  X Yu; S McCorkle; M Wang; Y Lee; J Li; A K Saha; R H Unger; N B Ruderman
Journal:  Diabetologia       Date:  2004-12-02       Impact factor: 10.122

Review 10.  The Role of AMP-activated protein kinase in fuel selection by the stressed heart.

Authors:  Raymond Russell
Journal:  Curr Hypertens Rep       Date:  2003-12       Impact factor: 5.369

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