恢复不足的强化训练对关节水平和单一肌肉纤维机械功能的影响:肌纤维对 Ca2+ 敏感性的作用

Olivia P Roussel, Christopher Pignanelli, Emma F Hubbard, Alexandra M Coates, Arthur Cheng, Jamie F Burr, Geoffrey Alonzo Power
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引用次数: 0

摘要

恢复时间不足的高强度运动训练与神经肌肉性能下降有关。然而,目前还不清楚单个肌肉纤维的机械功能和肌纤维对 Ca2+ 的敏感性是如何导致这些损伤的。我们研究了超负荷训练对关节级神经肌肉性能和细胞级机械功能的影响。14 名运动员(4 名女性,10 名男性)接受了为期 3 周的强化训练方案,其中包括高达正常训练时间 150% 的训练时间,以及每周三次额外的高强度训练。膝关节伸肌的神经肌肉性能通过最大自主收缩(MVC)力、电诱发抽搐收缩和力-频率关系进行评估。从外侧阔肌提取肌肉活检组织,以评估单纤维机械功能。训练后,最大自主收缩力和抽搐参数均未发生变化(所有 p>0.05),但观察到力量-频率曲线右移,5-20Hz 频率的力量平均减少 6-27%(所有 p>0.05)。
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Effects of intensified training with insufficient recovery on joint level and single muscle fibre mechanical function: The role of myofibrillar Ca2+ sensitivity.

Intense exercise training with insufficient recovery time is associated with reductions in neuromuscular performance. However, it is unclear how single muscle fibre mechanical function and myofibrillar Ca2+ sensitivity contribute to these impairments. We investigated the effects of overload training on joint-level neuromuscular performance and cellular-level mechanical function. Fourteenathletes (4 female, 10 male) underwent a 3-week intensified training protocol consisting of up to 150% of their regular training hours with three additional high-intensity training sessions per week. Neuromuscular performance of the knee extensors was assessed via maximum voluntary contraction (MVC) force, electrically evoked twitch contractions, and a force-frequency relationship. Muscle biopsies were taken from the vastus lateralis to assess single fibre mechanical function. Neither MVC force nor twitch parameters were altered following training (all p>0.05), but a rightward shift in the force-frequency curve was observed with average reduction in force of 6-27% across frequencies 5-20Hz (all p<0.05). In single fibres, maximal force output was not reduced following training, but there was a rightward shift in the force-pCa curve driven by a 6% reduction in Ca2+ sensitivity (p<0.05). These data indicate intensified training leads to impaired Ca2+ sensitivity at the single fibre level, which in part explains impaired neuromuscular function at the joint level during lower frequencies of activation. This is an important consideration for athletes, as performance is often assessed at maximal levels of activation, and these underlying impairments in force generation may be less obvious.

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