首页> 美国卫生研究院文献>The Journal of Neuroscience >Neural Control of Unloaded Leg Posture and of Leg Swing in Stick Insect Cockroach and Mouse Differs from That in Larger Animals
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Neural Control of Unloaded Leg Posture and of Leg Swing in Stick Insect Cockroach and Mouse Differs from That in Larger Animals

机译:竹节虫蟑螂和老鼠的空腿姿势和腿摆的神经控制与大型动物不同

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摘要

Stick insect (Carausius morosus) leg muscles contract and relax slowly. Control of stick insect leg posture and movement could therefore differ from that in animals with faster muscles. Consistent with this possibility, stick insect legs maintained constant posture without leg motor nerve activity when the animals were rotated in air. That unloaded leg posture was an intrinsic property of the legs was confirmed by showing that isolated legs had constant, gravity-independent postures. Muscle ablation experiments, experiments showing that leg muscle passive forces were large compared with gravitational forces, and experiments showing that, at the rest postures, agonist and antagonist muscles generated equal forces indicated that these postures depended in part on leg muscles. Leg muscle recordings showed that stick insect swing motor neurons fired throughout the entirety of swing. To test whether these results were specific to stick insect, we repeated some of these experiments in cockroach (Periplaneta americana) and mouse. Isolated cockroach legs also had gravity-independent rest positions and mouse swing motor neurons also fired throughout the entirety of swing. These data differ from those in human and horse but not cat. These size-dependent variations in whether legs have constant, gravity-independent postures, in whether swing motor neurons fire throughout the entirety of swing, and calculations of how quickly passive muscle force would slow limb movement as limb size varies suggest that these differences may be caused by scaling. Limb size may thus be as great a determinant as phylogenetic position of unloaded limb motor control strategy.
机译:昆虫(Carausius morosus)的腿部肌肉收缩并缓慢放松。因此,对棒虫腿的姿势和运动的控制可能不同于肌肉较快的动物。与这种可能性一致的是,当动物在空中旋转时,粘虫昆虫的腿保持恒定的姿势,而没有腿运动神经活动。通过显示孤立的双腿具有恒定的,与重力无关的姿势,可以确认空腿的姿势是双腿的固有属性。肌肉消融实验,实验表明腿部肌肉的被动力比重力大,并且实验表明在静止姿势下,激动剂和拮抗肌产生的力相等,表明这些姿势部分取决于腿部肌肉。腿部肌肉记录表明,在整个摆动过程中,棒虫摆动的运动神经元均被发射。为了测试这些结果是否专门针对粘虫,我们在蟑螂(美洲大eri)和小鼠中重复了一些实验。单独的蟑螂腿还具有与重力无关的休息位置,并且在整个挥杆过程中都触发了鼠标挥杆运动神经元。这些数据与人和马的数据不同,但与猫的数据不同。这些大小相关的变化,包括腿是否具有恒定的,与重力无关的姿势,挥杆运动神经元是否在整个挥杆过程中触发,以及对被动肌肉力量随着肢体大小变化的速度减慢肢体运动速度的计算表明,这些差异可能是由缩放引起。因此,肢体大小可能与卸载肢体运动控制策略的系统发育位置一样重要。

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