Twice-a-day training improves mitochondrial efficiency, but not mitochondrial biogenesis, compared with once-daily training.

Thaysa Ghiarone, Victor A Andrade-Souza, Sara K Learsi, Fabiano Tomazini, Thays Ataide-Silva, Andre Sansonio, Mariana P Fernandes, Karina L Saraiva, Regina C B Q Figueiredo, Yves Tourneur, Jujiao Kuang, Adriano E Lima-Silva, David J Bishop

Journal: Journal of applied physiology (Bethesda, Md. : 1985) 2020;127(3):713-725

PMID: 31246557

Abstract

Exercise training performed with lowered muscle glycogen stores can amplify adaptations related to oxidative metabolism, but it is not known if this is affected by the "train-low" strategy used (i.e., once-daily versus twice-a-day training). Fifteen healthy men performed 3 wk of an endurance exercise (100-min) followed by a high-intensity interval exercise 2 (twice-a-day group, = 8) or 14 h (once-daily group, = 7) later; therefore, the second training session always started with low muscle glycogen in both groups. Mitochondrial efficiency (state 4 respiration) was improved only for the twice-a-day group (group × training interaction, < 0.05). However, muscle citrate synthase activity, mitochondria, and lipid area in intermyofibrillar and subsarcolemmal regions, and PGC1α, PPARα, and electron transport chain relative protein abundance were not altered with training in either group ( > 0.05). Markers of aerobic fitness (e.g., peak oxygen uptake) were increased, and plasma lactate, O cost, and rating of perceived exertion during a 100-min exercise task were reduced in both groups, although the reduction in rating of perceived exertion was larger in the twice-a-day group (group × time × training interaction, < 0.05). These findings suggest similar training adaptations with both training low approaches; however, improvements in mitochondrial efficiency and perceived effort seem to be more pronounced with twice-a-day training. We assessed, for the first time, the differences between two "train-low" strategies (once-daily and twice-a-day) in terms of training-induced molecular, functional, and morphological adaptations. We found that both strategies had similar molecular and morphological adaptations; however, only the twice-a-day strategy increased mitochondrial efficiency and had a superior reduction in the rating of perceived exertion during a constant-load exercise compared with once-daily training. Our findings provide novel insights into skeletal muscle adaptations using the "train-low" strategy.

Address: Sport Science Research Group, Department of Physical Education and Sports Science, Academic Center of Vitoria, Federal University of Pernambuco, Vitoria de Santo Antao, Pernambuco, Brazil.; Dalton Cardiovascular Research Center, University of Missouri, Columbia, Missouri.; Sciences Applied in Sports Research Group, Institute of Biological and Health Sciences, Federal University of Alagoas, Maceio, Alagoas, Brazil.; Human Performance Research Group, Academic Department of Physical Education, Technological Federal University of Parana and Federal University of Parana, Curitiba, Parana, Brazil.; Faculty of Nutrition, Federal University of Alagoas, Maceio, Alagoas, Brazil.; Nucleus of Technological Platforms, Aggeu Magalhães Institute, Oswaldo Cruz Foundation (FIOCRUZ), Recife, Brazil.; Laboratory of Cell Biology, Department of Microbiology, Aggeu Magalhães Institute, FIOCRUZ, Recife, Brazil.; Faculty of Medicine Lyon South, University of Lyon, Lyon, France.; Institute for Health and Sport, Victoria University, Melbourne, Victoria, Australia.; School of Medical and Health Sciences, Edith Cowan University, Joondalup, Western Australia, Australia.

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