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首页> 外文期刊>The Journal of Experimental Biology >Energy-saving mechanisms in muscle: the minimization strategy [Review]
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Energy-saving mechanisms in muscle: the minimization strategy [Review]

机译:肌肉的节能机制:最小化策略[评论]

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摘要

Many mechanisms reduce the cost of muscle activity. Here, we describe a set of specializations that reduce the cost of contraction in the high-frequency twitches that are used by a wide variety of animals for either sound production or flight. Minimizing the cost of these contractions means that cellular ATP production can meet ATP demand and sustain the high contractile rate. Two classes of specialization are found that minimize the contractile cost. The first class reduces the muscle work required per contraction. Light appendages such as rattles, insect limbs and membranous wings that require little work for movement are used in high-frequency contractions. The second set of specializations involves processes that minimize energy use. High-frequency muscles tend to have a lower cross-bridge content, fewer attached cross-bridges and shorter length changes per contraction. The result is low muscle-specific forces (stress), small length changes (strain) and rapid contraction times that suggest that these muscles push the lower limit of contractile function. The consequence of function at this lower extreme of contraction is to minimize the contractile cost of high-frequency muscles. Thus, specializations that permit rapid contractions at a low rate of ATP use per twitch are the basis of a minimization strategy for energy saving in muscles contracting at high frequency.
机译:许多机制降低了肌肉活动的成本。在这里,我们描述了一组专门技术,可以减少高频抽搐的收缩成本,这些抽搐被各种各样的动物用来产生声音或飞行。使这些收缩的成本最小化意味着细胞ATP的生产可以满足ATP的需求并维持高收缩率。发现两类专业化可将收缩成本降至最低。第一类减少每次收缩所需的肌肉功。高频收缩中使用了轻的附属物,例如拨浪鼓,昆虫的肢体和膜状的翅膀,它们几乎不需要运动即可工作。第二套专业化涉及最小化能源使用的过程。高频肌肉倾向于具有较低的跨桥含量,较少的附着跨桥和较短的每次收缩长度变化。结果是较低的肌肉比力(压力),较小的长度变化(应变)和快速的收缩时间,表明这些肌肉推动了收缩功能的下限。在这种较低的收缩极限下起作用的结果是使高频肌肉的收缩成本最小化。因此,允许以每抽动ATP的低速率快速收缩的专业化技术是在高频收缩的肌肉中实现节能的最小化策略的基础。

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