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首页> 外文期刊>Integrative and Comparative Biology >Can Strain Dependent Inhibition of Cross-Bridge Binding Explain Shifts in Optimum Muscle Length?
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Can Strain Dependent Inhibition of Cross-Bridge Binding Explain Shifts in Optimum Muscle Length?

机译:是否会抑制依赖于桥梁结合的抑制解释在最佳肌肉长度中的变化?

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摘要

Skeletal muscle force is generated by cross-bridge interactions between the overlapping contractile proteins, actin and myosin. The geometry of this overlap gives us the force-length relationship in which maximum isometric force is generated at an intermediate, optimum, length. However, the force-length relationship is not constant; optimum length increases with decreasing muscle activation. This effect is not predicted from actin-myosin overlap. Here we present evidence that this activation-dependent shift in optimum length may be due to a series compliance within muscles. As muscles generate force during fixed-end contractions, fibers shorten against series compliance until forces equilibrate and they become isometric. Shortening against series-compliance is proportional to activation, and creates conditions under which shortening-induced force depression may suppress full force development. Greater shortening will result in greater force depression. Hence, optimum length may decrease as activation rises due to greater fiber shortening. We discuss explanations of such history dependence, giving a review of previously proposed processes and suggesting a novel mechanistic explanation for the most likely candidate process based on tropomyosin kinetics. We suggest this mechanism could change the relationship between actin-myosin overlap and cross-bridge binding potential, not only depressing force at any given length, but also altering the relationship between force and length. This would have major consequences for our understanding of in vivo muscle performance.
机译:通过重叠的收缩蛋白,肌动蛋白和肌球蛋白之间的跨桥相互作用产生骨骼肌。该重叠的几何形状给了我们动力长度关系,其中在中间,最佳长度处产生最大等距力。但是,力长关系不是恒定的;随着肌肉激活减少,最佳长度增加。没有从肌动蛋白 - 肌球蛋白重叠预测这种效果。在这里,我们提出了最佳长度的激活依赖变化可能是由于肌肉内的串联符合性。由于肌肉在固定末端收缩期间产生力,纤维缩短了串联顺应性,直到力平衡,它们变得等距。缩短串联符合性与激活成比例,并在缩短诱导的力抑制可能抑制全力发育的情况下产生条件。更大的缩短将导致更大的力量抑郁症。因此,由于更大的纤维缩短,最佳长度可能随着激活而上升而降低。我们讨论了对这些历史依赖的解释,审查了先前提出的流程,并对基于原型流罗米多芬动力学的最可能候选过程提出了一种新的机制解释。我们建议这种机制可以改变肌动蛋白 - 肌球蛋白重叠和交叉桥接势之间的关系,不仅在任何给定长度下抑制力,而且还改变力和长度之间的关系。这将对我们对体内肌肉表现的理解产生重大影响。

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