首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Haltere-mediated equilibrium reflexes of the fruit fly, Drosophila melanogaster
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Haltere-mediated equilibrium reflexes of the fruit fly, Drosophila melanogaster

机译:ter蝇介导的果蝇果蝇的平衡反射

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摘要

Flies display a sophisticated suite of aerial behaviours that require rapid sensory-motor processing. Like all insects, flight control in flies is mediated in part by motion-sensitive visual interneurons that project to steering motor circuitry within the thorax. Flies, however, possess a unique flight control equilibrium sense that is encoded by mechanoreceptors at the base of the halteres, small dumb-bell-shaped organs derived through evolutionary transformation of the hind wings. To study the input of the haltere system onto the flight control system, I constructed a mechanically oscillating flight arena consisting of a cylindrical array of light-emitting diodes that generated the moving image of a 30 deg vertical stripe. The arena provided closed-loop visual feedback to elicit fixation behaviour, an orientation response in which flies maintain the position of the stripe in the front portion of their visual field by actively adjusting their wing kinematics. While flies orientate towards the stripe, the entire arena was swung back and forth while an optoelectronic device recorded the compensatory changes in wing stroke amplitude and frequency. In order to reduce the background changes in stroke kinematics resulting from the animal's closed-loop visual fixation behaviour, the responses to eight identical mechanical rotations were averaged in each trial. The results indicate that flies possess a robust equilibrium reflex in which angular rotations of the body elicit compensatory changes in both the amplitude and stroke frequency of the wings. The results of uni- and bilateral ablation experiments demonstrate that the halteres are required for these stability reflexes. The results also confirm that halteres encode angular velocity of the body by detecting the Coriolis forces that result from the linear motion of the haltere within the rotating frame of reference of the fly's thorax. By rotating the flight arena at different orientations, it was possible to construct a complete directional tuning map of the haltere-mediated reflexes. The directional tuning of the reflex is quite linear such that the kinematic responses vary as simple trigonometric functions of stimulus orientation. The reflexes function primarily to stabilize pitch and yaw within the horizontal plane.
机译:苍蝇表现出一套复杂的空中行为,需要快速的感觉运动处理。像所有昆虫一样,苍蝇的飞行控制部分地由运动敏感的视觉神经元介导,该神经元投射到胸部的转向电机电路。然而,苍蝇拥有独特的飞行控制平衡感,这种平衡感是由吊袜带底部的机械感受器编码的,而这些小哑铃形器官是通过后翅的进化转化而来的。为了研究将hal带系统输入到飞行控制系统中,我构建了一个机械振荡的飞行竞技场,该竞技场由圆柱形发光二极管阵列组成,该阵列产生了30度垂直条纹的运动图像。竞技场提供了闭环视觉反馈,以引起固定行为,即一种定向响应,在这种定向响应中,果蝇通过主动调节其机翼运动学来保持条纹在其视野的前部位置。当苍蝇朝向条纹定向时,整个竞技场来回摆动,而光电设备记录了机翼冲程幅度和频率的补偿性变化。为了减少由动物的闭环视觉固定行为引起的中风运动学的背景变化,在每个试验中平均对八个相同的机械旋转的响应。结果表明,苍蝇具有强大的平衡反射能力,其中身体的角旋转引起机翼幅度和冲程频率的补偿性变化。单,双侧消融实验的结果表明,这些稳定性反射需要三角吊带。结果还证实,通过检测科索里氏力可以将三角裤编码为身体的角速度,该力是由苍蝇的胸部参照系在旋转框架内的线性运动产生的。通过以不同的方向旋转飞行竞技场,有可能构建出由露背介导的反射的完整定向调谐图。反射的方向性调整非常线性,因此运动响应随刺激方向的简单三角函数而变化。反射主要用于稳定水平面内的俯仰和偏航。

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