Magni Mohr, Tobias Schmidt Nielsen, Pál Weihe, Jákup A Thomsen, Giovanna Aquino, Peter Krustrup, Nikolai B Nordsborg
Journal: Physiological reports 2018;5(19):e13470
PMID: 29038365
It was evaluated whether upper-body compared to lower-body musculature exhibits a different phenotype in relation to capacity for handling reactive oxygen species (ROS), H, La, Na, K and also whether it differs in adaptive potential to exercise training. Eighty-three sedentary premenopausal women aged 45 ± 6 years (mean ± SD) were randomized into a high-intensity intermittent swimming group (HIS, =21), a moderate-intensity swimming group (MOS, =21), a soccer group (SOC, =21), or a control group (CON, =20). Intervention groups completed three weekly training sessions for 15 weeks, and pre- and postintervention biopsies were obtained from deltoideus and vastus lateralis muscle. Before training, monocarboxylate transporter 4 (MCT4), Na/K pump , and superoxide dismutase 2 (SOD2) expressions were lower (<0.05) in deltoideus than in vastus lateralis, whereas deltoid had higher (<0.05) Na/H exchanger 1 (NHE1) expression. As a result of training, Na/K pump isoform expression was elevated only in deltoideus muscle, while upregulation (<0.05) of the and subunits, phospholemman (FXYD1), NHE1, and superoxide dismutase 1 expression occurred exclusively in vastus lateralis muscle. The increased (<0.05) expression of MCT4 and SOD2 in deltoid muscle after HIS and vastus lateralis muscle after SOC were similar. In conclusion, arm musculature displays lower basal ROS, La, K handling capability but higher Na-dependent H extrusion capacity than leg musculature. Training-induced changes in the ion-transporting and antioxidant proteins clearly differed between muscle groups.
© 2017 The Authors. Physiological Reports published by Wiley Periodicals, Inc. on behalf of The Physiological Society and the American Physiological Society.
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