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MUSCLE TRADE-OFFS IN A POWER-AMPLIFIED PREY CAPTURE SYSTEM

机译:功率放大的捕食系统中的肌肉权衡

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Should animals operating at great speeds and accelerations use fast or slow muscles? The answer hinges on a fundamental tradeoff: muscles can be maximally fast or forceful, but not both. Direct lever systems offer a straightforward manifestation of this trade-off, yet the fastest organisms use power amplification, not direct lever action. Power-amplified systems typically use slow, forceful muscles to preload springs, which then rapidly release elastic potential energy to generate high speeds and accelerations. However, a fast response to a stimulus may necessitate fast spring-loading. Across 22 mantis shrimp species (Stomatopoda), this study examined how muscle anatomy correlates with spring mechanics and appendage type. We found that muscle force is maximized through physiological cross-sectional area, but not through sarcomere length. Sit-and-wait predators (spearers) had the shortest sarcomere lengths (fastest contractions) and the slowest strike speeds. The species that crush shells (smashers) had the fastest speeds, most forceful springs, and longest sarcomeres. The origin of the smasher clade yielded dazzlingly high accelerations, perhaps due to the release from fast spring-loading for evasive prey capture. This study offers a new window into the dynamics of force–speed trade-offs in muscles in the biomechanical, comparative evolutionary framework of power-amplified systems.
机译:动物应以高速度和加速度运动时使用快还是慢的肌肉?答案取决于基本权衡:肌肉可以最大程度地快速或有力,但不能同时兼顾。直接杠杆系统提供了这种折衷的直接体现,但是最快的生物使用功率放大,而不是直接杠杆作用。功率放大系统通常使用缓慢而有力的肌肉来预加载弹簧,然后弹簧会快速释放弹性势能以产生高速和加速。但是,对刺激的快速响应可能需要快速加载弹簧。这项研究针对22种螳螂虾(Stomatopoda),研究了肌肉解剖结构与弹簧力学和附肢类型的关系。我们发现,肌肉的力量是通过生理截面积最大化的,而不是通过肌节长度来最大化的。静坐掠食者(长矛)的肌节长度最短(收缩最快),罢工速度最慢。压碎贝壳(粉碎机)的物种具有最快的速度,最有力的弹簧和最长的肉瘤。粉碎器进化枝的起源产生了令人眼花high乱的高加速度,这可能是由于快速弹簧加载释放了逃避的猎物而导致的。这项研究为功率放大系统的生物力学,比较进化框架中的肌肉力量-速度权衡的动力学提供了新的窗口。

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