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首页> 外文期刊>The Journal of Experimental Biology >The correlation between wing kinematics and steering muscle activity in the blowfly Calliphora vicina
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The correlation between wing kinematics and steering muscle activity in the blowfly Calliphora vicina

机译:蝇蝇Calliphora vicina的机翼运动学与转向肌肉活动之间的相关性

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Determining how the motor patterns of the nervous system are converted into the mechanical and behavioral output of the body is a central goal in the study of locomotion. In the case of dipteran flight, a population of small steering muscles controls many of the subtle changes in wing kinematics that allow flies to maneuver rapidly. We filmed the wing motion of tethered Calliphora vicina at high speed and simultaneously recorded multi-channel electromyographic signals from some of the prominent steering muscles in order to correlate kinematics with muscle activity. Using this analysis, we found that the timing of each spike in the basalare muscles was strongly correlated with changes in the deviation of the stroke plane during the downstroke. The relationship was non-linear such that the magnitude of the kinematic response to each muscle spike decreased with increasing levels of stroke deviation. This result suggests that downstroke deviation is controlled in part via the mechanical summation of basalare activity. We also found that interactions among the basalares and muscles III2-III4 determine the maximum forward amplitude of the wingstroke. In addition, activity in muscle 11 appears to participate in a wingbeat gearing mechanism, as previously proposed. Using these results, we have been able to correlate changes in wing kinematics with alteration in the spike rate, firing phase and combinatorial activity of identified steering muscles.
机译:确定运动系统的主要目标是确定神经系统的运动方式如何转换为身体的机械和行为输出。在北斗七星飞行的情况下,一群小的操纵肌控制着机翼运动学中许多细微的变化,这些变化使苍蝇能够快速机动。我们以高速拍摄了拴系维氏Calliphora vicina的机翼运动,并同时记录了一些重要转向肌肉的多通道肌电图信号,以便将运动学与肌肉活动相关联。使用此分析,我们发现,在下冲程期间,基底肌每个尖峰的时机与中风平面偏差的变化密切相关。该关系是非线性的,使得对每个肌肉尖峰的运动响应的幅度随着行程偏差水平的增加而减小。该结果表明,向下行程偏差部分地通过基础运动的机械求和来控制。我们还发现,基底层和肌肉III2-III4之间的相互作用决定了翼击的最大正向振幅。另外,如先前所提出的,肌肉11中的活动似乎参与了脉动齿轮机构。使用这些结果,我们已经能够将机翼运动学的变化与所识别的转向肌肉的尖峰速率,发射相位和组合活动的变化相关联。

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