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Previous short‐term disuse dictates muscle gene expression and physiological adaptations to subsequent resistance exercise

MFN2型 MFN1型 肌肉萎缩 氧化磷酸化 糖原 内科学 内分泌学 股四头肌 线粒体生物发生 萎缩 耐力训练 医学 股四头肌 线粒体 生物 男科 线粒体融合 线粒体DNA 基因 生物化学 等长运动
作者
Martino V. Franchi,Julián Candia,Fabio Sarto,Giuseppe Sirago,Giacomo Valli,Matteo Paganini,Lisa M. Hartnell,Emiliana Giacomello,L. Toniolo,Elena Monti,Leonardo Nogara,Tatiana Moro,Antonio Paoli,Marta Murgia,Lorenza Brocca,Maria Antonietta Pellegrino,Bruno Grassi,Roberto Bottinelli,Giuseppe De Vito,Luigi Ferrucci
出处
期刊:The Journal of Physiology [Wiley]
卷期号:603 (13): 3725-3753 被引量:8
标识
DOI:10.1113/jp287003
摘要

Abstract Short‐term unloading experienced following injury or hospitalisation induces muscle atrophy and weakness. The effects of exercise following unloading have been scarcely investigated. We investigated the functional and molecular adaptations to a resistance training (RT) programme following short‐term unloading. Eleven males (22.09 ± 2.91 years) underwent 10 days of unilateral lower limb suspension (ULLS) followed by 21 days of knee extensor RT (three times/week). Data collection occurred at Baseline (LS0), after ULLS (LS10) and at active recovery (AR21). Knee extensor maximum voluntary contraction (MVC) was evaluated. Quadriceps volume was estimated by ultrasonography. Muscle fibre cross‐sectional area, fibre type distribution, glycogen content and succinate dehydrogenase (SDH) activity were measured from vastus lateralis biopsies. Mitochondrial‐related proteins were quantified by western blot and transcriptional responses were assessed by RNA sequencing. Following ULLS, quadriceps volume and MVC decreased significantly (3.7%, P < 0.05; 29.3%, P < 0.001). At AR21 ( vs . LS10), MVC was fully restored (42%) and quadriceps volume increased markedly (18.6%, P < 0.001). Glycogen content and whole‐body water increased at AR21 (14%, P < 0.001; 3.1%, P < 0.05). We observed a marked increase in fibre type I at AR21 (38%, P < 0.05). SDH immunoreactivity increased significantly after exercise (20%, P < 0.001). Mitochondrial fusion (MFN1, MFN2 and OPA1) and fission (DRP1) proteins were markedly increased by RT, and the most differentially expressed genes belonged to oxidative phosphorylation pathways. In contrast with what is usually observed after RT, oxidative metabolism, slow fibre type and mitochondrial dynamics were enhanced beyond expected. We propose that prior exposure to short‐term muscle unloading may drive the nature of molecular adaptations to subsequent RT. image Key points Short‐term unloading is often experienced during recovery from injuries and hospitalisation, leading to loss of muscle mass and strength. Although exercise can be beneficial in mitigating/reversing such alterations during disuse, only a few studies have focused on the effects of exercise following muscle unloading. With an integrative physiological approach, we aimed to elucidate the basic mechanisms of muscle function recovery in response to 21 days of resistance exercise that followed 10 days of unilateral lower limb suspension (ULLS), assessing whether the mechanisms underlying recovery are defined by a specific reversal of those that occurred during disuse. Resistance training was successful in recovering functional and structural muscle properties after 10 days of ULLS, but in contrast with what is usually observed in response to this training modality, oxidative metabolism and slow fibre type were mostly enhanced. We propose that prior exposure to short‐term muscle unloading may drive the adaptations to subsequent exercise.
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