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The Function and Organization of the Motor System Controlling Flight Maneuvers in Flies

机译:苍蝇飞行操纵系统的功能与组织

摘要

Animals face the daunting task of controlling their limbs using a small set of highly constrained actuators. This problem is particularly demanding for insects such as Drosophila, which must adjust wing motion for both quick voluntary maneuvers and slow compensatory reflexes using only a dozen pairs of muscles. To identify strategies by which animals execute precise actions using sparse motor networks, we imaged the activity of a complete ensemble of wing control muscles in intact, flying flies. Our experiments uncovered a remarkably efficient logic in which each of the four skeletal elements at the base of the wing are equipped with both large phasically active muscles capable of executing large changes and smaller tonically active muscles specialized for continuous fine-scaled adjustments. Based on the responses to a broad panel of visual motion stimuli, we have developed a model by which the motor array regulates aerodynamically functional features of wing motion.
机译:动物面临着使用一小组高度约束的致动器控制肢体的艰巨任务。这个问题对诸如果蝇的昆虫特别苛刻,该昆虫必须仅使用十几对肌肉来调整翼的运动,以实现快速的自愿操纵和缓慢的代偿反射。为了确定动物使用稀疏运动网络执行精确动作的策略,我们对完整,飞行的果蝇的机翼控制肌肉进行了完整的成像。我们的实验揭示了一种非常有效的逻辑,其中,机翼底部的四个骨骼元素中的每一个都装备有能够执行较大变化的大型有相位活跃肌肉,以及专门用于连续精细调整的较小的有声活跃肌肉。基于对视觉运动刺激的广泛响应,我们开发了一种模型,通过该模型,电动机阵列可调节机翼运动的空气动力学功能特征。

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