Literature DB >> 16684856

Endurance training has little effect on active muscle free fatty acid, lipoprotein cholesterol, or triglyceride net balances.

Kevin A Jacobs1, Ronald M Krauss, Jill A Fattor, Michael A Horning, Anne L Friedlander, Timothy A Bauer, Todd A Hagobian, Eugene E Wolfel, George A Brooks.   

Abstract

We evaluated the hypothesis that net leg total FFA, LDL-C, and TG uptake and HDL-C release during moderate-intensity cycling exercise would be increased following endurance training. Eight sedentary men (26 +/- 1 yr, 77.4 +/- 3.7 kg) were studied in the postprandial state during 90 min of rest and 60 min of exercise twice before (45% and 65% V(O2 peak)) and twice after 9 wk of endurance training (55% and 65% posttraining V(O2 peak)). Measurements across an exercising leg were taken to be a surrogate for active skeletal muscle. To determine limb lipid exchange, femoral arterial and venous blood samples drawn simultaneously at rest and during exercise were analyzed for total and individual FFA (e.g., palmitate, oleate), LDL-C, HDL-C, and TG concentrations, and limb blood flow was determined by thermodilution. The transition from rest to exercise resulted in a shift from net leg total FFA release (-44 +/- 16 micromol/min) to uptake (193 +/- 49 micromol/min) that was unaffected by either exercise intensity or endurance training. The relative net leg release and uptake of individual FFA closely resembled their relative abundances in the plasma with approximately 21 and 41% of net leg total FFA uptake during exercise accounted for by palmitate and oleate, respectively. Endurance training resulted in significant changes in arterial concentrations of HDL-C (49 +/- 5 vs. 52 +/- 5 mg/dl, pre vs. post) and LDL-C (82 +/- 9 vs. 76 +/- 9 mg/dl, pre vs. post), but there was no net TG or LDL-C uptake or HDL-C release across the resting or active leg before or after endurance training. In conclusion, endurance training favorably affects blood lipoprotein profiles, even in young, healthy normolipidemic men, but muscle contractions per se have little effect on net leg LDL-C, or TG uptake or HDL-C release during moderate-intensity cycling exercise. Therefore, the favorable effects of physical activity on the lipid profiles of young, healthy normolipidemic men in the postprandial state are not attributable to changes in HDL-C or LDL-C exchange across active skeletal muscle.

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Year:  2006        PMID: 16684856     DOI: 10.1152/ajpendo.00020.2006

Source DB:  PubMed          Journal:  Am J Physiol Endocrinol Metab        ISSN: 0193-1849            Impact factor:   4.310


  6 in total

Review 1.  The Effect of Exercise Training on the Energetic Cost of Cycling.

Authors:  David Montero; Carsten Lundby
Journal:  Sports Med       Date:  2015-11       Impact factor: 11.136

2.  Low expression of long-chain acyl-CoA dehydrogenase in human skeletal muscle.

Authors:  Amy C Maher; Al-Walid Mohsen; Jerry Vockley; Mark A Tarnopolsky
Journal:  Mol Genet Metab       Date:  2010-03-19       Impact factor: 4.797

3.  Exercise training alters effect of high-fat feeding on the ACTH stress response in pigs.

Authors:  Ryan Jankord; Venkataseshu K Ganjam; James R Turk; Marc T Hamilton; M Harold Laughlin
Journal:  Appl Physiol Nutr Metab       Date:  2008-06       Impact factor: 2.665

4.  Serum metabolite profiles of postoperative fatigue syndrome in rat following partial hepatectomy.

Authors:  Ye Lu; Rui Yang; Xin Jiang; Yajuan Yang; Fei Peng; Hongbin Yuan
Journal:  J Clin Biochem Nutr       Date:  2016-02-19       Impact factor: 3.114

5.  The effects of the academic performance of college students whose major is sports on body composition and abdominal fat rates.

Authors:  Hyeon-Ok Hong; Bo-Ae Lee
Journal:  J Exerc Rehabil       Date:  2016-08-31

Review 6.  Exercise and High-Fat Diet in Obesity: Functional Genomics Perspectives of Two Energy Homeostasis Pillars.

Authors:  Abdelaziz Ghanemi; Aicha Melouane; Mayumi Yoshioka; Jonny St-Amand
Journal:  Genes (Basel)       Date:  2020-07-31       Impact factor: 4.096

  6 in total

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