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首页> 外文期刊>The Journal of Experimental Biology >Muscle designed for maximum short-term power output: quail flight muscle [Review]
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Muscle designed for maximum short-term power output: quail flight muscle [Review]

机译:专为最大短期力量输出而设计的肌肉:鹌鹑飞行肌肉[评论]

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Take-off in birds at high speeds and steep angles of elevation requires a high burst power output. The mean power output of the pectoralis muscle of blue-breasted quail (Coturnix chinensis) during take-off is approximately 400Wkg(-1) muscle, as determined using two independent methods. This burst power output is much higher than has been measured in any other cyclically contracting muscle. The power output of muscle is determined by the interactions between the physiological properties of the muscle, the stimulation regime imposed by the central nervous system and the details of the strain cycle, which are determined by the reciprocal interaction between the muscle properties and the environmental load. The physiological adaptations that enable a high power output to be achieved are those that allow the muscle to develop high stresses whilst shortening rapidly. These characteristics include a high myofibrillar density, rapid twitch contraction kinetics and a high maximum intrinsic velocity of shortening. In addition, several features of the strain cycle increase the power output of the quail pectoralis muscle. First, the muscle operates at a mean length shorter than the plateau of the length/force relationship. Second, the muscle length trajectory is asymmetrical, with 70 % of the cycle spent shortening. The asymmetrical cycle is expected to increase the power output substantially. Third, subtle deviations in the velocity profile improve power output compared with a simple asymmetrical cycle with constant lengthening and shortening rates. The high burst power outputs found in the flight muscles of quail and similar birds are limited to very brief efforts before fatigue occurs. This strong but short flight performance is well-suited to the rapid-response anti-predation strategy of these birds that involves a short flight coupled with a subsequent sustained escape by running. These considerations serve as a reminder that the maximum power-producing capacities of muscles need to be considered in the context of the in vivo situation within which the muscles operate.
机译:以高速度和陡峭的仰角在鸟类中起飞需要高爆发力输出。蓝胸鹌鹑(Coturnix chinensis)的胸大肌起飞时的平均功率输出约为400Wkg(-1)肌肉,这是使用两种独立的方法确定的。该爆发功率输出远高于在任何其他周期性收缩肌肉中测得的功率。肌肉的功率输出取决于肌肉的生理特性,中枢神经系统施加的刺激机制以及应变周期的细节之间的相互作用,而这些细节取决于肌肉特性与环境负荷之间的相互作用。能够实现高功率输出的生理适应是那些使肌肉产生高压力同时迅速缩短的生理适应。这些特征包括高的肌原纤维密度,快速的抽搐收缩动力学和高的最大内在缩短速度。另外,应变循环的几个特征增加了鹌鹑胸大肌的功率输出。首先,肌肉的平均长度短于长度/力量关系的平稳期。其次,肌肉长度轨迹是不对称的,缩短了70%的周期。不对称周期有望大大增加功率输出。第三,与简单的不对称循环(具有恒定的加长和缩短速率)相比,速度曲线中的细微偏差提高了功率输出。在鹌鹑和类似鸟类的飞行肌肉中发现的高爆发力输出仅限于在疲劳发生之前进行非常短暂的努力。这种强劲而短时间的飞行性能非常适合这些鸟类的快速反应防捕食策略,该策略涉及短时间飞行以及随后的持续逃跑。这些考虑提醒我们,在肌肉在其中工作的体内情况下,需要考虑肌肉的最大发电能力。

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