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Exercise alters the profile of phospholipid molecular species in rat skeletal muscle

journal contribution
posted on 2024-11-01, 01:48 authored by Todd Mitchell, Nigel Turner, Anthony Hulbert, Paul Else, John Hawley, Jong Lee, Clinton Bruce, Stephen Blanksby
We have determined the effect of two exercise-training intensities on the phospholipid profile of both glycolytic and oxidative muscle fibers of female Sprague-Dawley rats using electrospray-ionization mass spectrometry. Animals were randomly divided into three training groups: control, which performed no exercise training; low-intensity ( 8 m/min) treadmill running; or high-intensity ( 28 m/min) treadmill running. All exercise-trained rats ran 1,000 m/session for 4 days/wk for 4 wk and were killed 48 h after the last training bout. Exercise training was found to produce no novel phospholipid species but was associated with significant alterations in the relative abundance of a number of phospholipid molecular species. These changes were more prominent in glycolytic ( white vastus lateralis) than in oxidative ( red vastus lateralis) muscle fibers. The largest observed change was a decrease of similar to20% in the abundance of 1-stearoyl-2-docosahexaenoyl-phosphatidylethanolamine [PE(18: 0/ 22: 6); P < 0.001] ions in both the low- and high-intensity training regimes in glycolytic fibers. Increases in the abundance of 1-oleoyl-2-linoleoyl phopshatidic acid [PA(18: 1/18: 2); P < 0.001] and 1-alkenylpalmitoyl-2-linoleoyl phosphatidylethanolamine [plasmenyl PE ( 16: 0/ 18: 2); P < 0.005] ions were also observed for both training regimes in glycolytic fibers. We conclude that exercise training results in a remodeling of phospholipids in rat skeletal muscle. Even though little is known about the physiological or pathophysiological role of specific phospholipid molecular species in skeletal muscle, it is likely that this remodeling will have an impact on a range of cellular functions.

History

Journal

Journal of Applied Physiology

Volume

97

Issue

5

Start page

1823

End page

1829

Total pages

7

Publisher

American Physiological Society

Place published

USA

Language

English

Copyright

© 2004 the American Physiological Society

Former Identifier

2004002252

Esploro creation date

2020-06-22

Fedora creation date

2012-04-27

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