首页> 外文期刊>The Journal of Physiology >Effects of elevated H + + and P i i on the contractile mechanics of skeletal muscle fibres from young and old men: implications for muscle fatigue in humans
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Effects of elevated H + + and P i i on the contractile mechanics of skeletal muscle fibres from young and old men: implications for muscle fatigue in humans

机译:H ++和P i I对年轻人骨骼肌纤维的收缩力学的影响:人类疲劳的影响

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Key points The mechanisms responsible for the loss in muscle power and increased fatigability with ageing are unresolved. We show that the contractile mechanics of fibres from the vastus lateralis of old men were well‐preserved compared to those of young men, but the selective loss of fast myosin heavy chain II muscle was strongly associated with age‐related decrements in whole‐muscle strength and power. We reveal that the combination of acidosis (H + ) and inorganic phosphate (P i ) is an important mediator of muscle fatigue in humans by inhibiting the low‐ to high‐force state of the cross‐bridge cycle and peak power, but the depressive effects of these ions on cross‐bridge function were similar in fibres from young and old men. These findings suggest that the age‐related loss in muscle power is primarily determined by the atrophy of fast fibres, but the age‐related increased fatigability cannot be explained by an increased sensitivity of the cross‐bridge to H + and P i . Abstract The present study aimed to identify the mechanisms responsible for the loss in muscle power and increased fatigability with ageing by integrating measures of whole‐muscle function with single fibre contractile mechanics. After adjusting for the 22% smaller muscle mass in old (73–89?years, n?=? 6) compared to young men (20–29?years, n?=? 6), isometric torque and power output of the knee extensors were, respectively, 38% and 53% lower with age. Fatigability was ~2.7‐fold greater with age and strongly associated with reductions in the electrically‐evoked contractile properties. To test whether cross‐bridge mechanisms could explain age‐related decrements in knee extensor function, we exposed myofibres ( n?=? 254) from the vastus lateralis to conditions mimicking quiescent muscle and fatiguing levels of acidosis (H + ) (pH 6.2) and inorganic phosphate (P i ) (30?m m ). The fatigue‐mimicking condition caused marked reductions in force, shortening velocity and power and inhibited the low‐ to high‐force state of the cross‐bridge cycle, confirming findings from non‐human studies that these ions act synergistically to impair cross‐bridge function. Other than severe age‐related atrophy of fast fibres (?55%), contractile function and the depressive effects of the fatigue‐mimicking condition did not differ in fibres from young and old men. The selective loss of fast myosin heavy chain II muscle was strongly associated with the age‐related decrease in isometric torque ( r ?=?0.785) and power ( r ?=?0.861). These data suggest that the age‐related loss in muscle strength and power are primarily determined by the atrophy of fast fibres, but the age‐related increased fatigability cannot be explained by an increased sensitivity of the cross‐bridge to H + and P i .
机译:关键点对肌肉力量损失负责的机制和随老化的疲劳性增加是未解决的。我们表明,与年轻男性相比,老年人的睫毛侧面的纤维的收缩机制得到了很好的保留,但快速肌球蛋白重链II肌肉的选择性丧失与全肌强度相关的年龄相关的减少强烈关联和力量。我们揭示酸中毒(H +)和无机磷酸盐(P i)的组合通过抑制跨桥循环和峰值功率的低力状态,是人类肌肉疲劳的重要介体。抑郁症这些离子对来自年轻人和老年人的纤维相似的效果。这些研究结果表明,肌肉力量的年龄相关损失主要由快速纤维的萎缩确定,但是与H +和P +和P i的斜桥的敏感性增加,不能解释与年龄相关的疲劳性。摘要本研究旨在确定负责肌肉力量损失的机制,并通过用单纤维收缩力学整合全肌功能的措施来增加衰老的疲劳性。与年轻人(20-29?岁月,N?=?6)相比调整22%较小的肌肉质量(73-89?岁,N?=?6),膝关节的等距扭矩和动力输出分别为38%和53%的年龄。疲劳性与年龄较大〜2.7倍,与减少电诱发的收缩性能强烈相关。为了测试跨桥机制是否可以解释膝关节伸肌功能的年龄相关的递减,我们将肌电纤维(n?=Δ254)暴露于覆膜肌肉和酸中毒(H +)(pH 6.2)的酸中肌肉和疲劳水平的条件和无机磷酸盐(P i)(30Ωmm)。疲劳模仿条件导致力量显着,缩短速度和功率,并抑制了跨桥循环的低力状态,确认了非人研究的结果,即这些离子对损害交叉桥功能造成损害跨桥功能。除严重的年龄相关的快速纤维(55%),收缩功能和疲劳模仿条件的抑郁效果并无不同来自年轻人和老年人的纤维不同。快速肌球蛋白重链II肌肉的选择性损失与等距扭矩的年龄相关的减少强烈相关(R?= 0.785)和功率(R?= 0.861)。这些数据表明,肌肉力量和功率的年龄相关损失主要由快速纤维的萎缩决定,但是与H +和P i的交叉桥的敏感性增加,不能解释与年龄相关的疲劳性。

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