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黑腹果蝇飞行路线和高度的视动控制与至少三对飞行转向肌肉的不同活动相关。

Optomotor control of course and altitude in Drosophila melanogaster is correlated with distinct activities of at least three pairs of flight steering muscles.

作者信息

Heide G, Götz K G

机构信息

Universität Düsseldorf, Mathematisch-Naturwissenschaftliche Fakultät/Zoologie, Germany.

出版信息

J Exp Biol. 1996 Aug;199(Pt 8):1711-26. doi: 10.1242/jeb.199.8.1711.

Abstract

Flight control in the fruitfly Drosophila melanogaster is achieved by minute sets of muscles on either side of the thorax. Control responses of wings and muscles were elicited during fixed flight by moving a striped pattern in front of the eyes. For example, pattern motion from the lower right to the upper left signals to the test fly a rotatory course deviation to the right and simultaneously a translatory altitude displacement downwards. The counteracting response to the displacement of the retinal image is an increase in thrust and lift on the right, accomplished mainly by increasing the wingbeat amplitude (WBA) on that side. A comparison of such responses with the simultaneously recorded action potentials in the prominent basalar muscles M.b1 and M.b2 and axillary muscles M.I1 and M.III1 on either side suggests that three of these muscles act on the WBA more or less independently and contribute to the optomotor control of course and altitude. During flight, M.b1 is almost continuously active with a frequency equal to or slightly below 1 spike per wingbeat cycle. The spikes occur within a narrow phase interval of this cycle, normally at the beginning of the transition from upstroke to downstroke. However, the visual stimulus described above causes a substantial phase lead in M.b1 on the right; the spikes occur shortly before the end of the upstroke. Such phase shifts are accompanied by comparatively smooth 'tonic' responses of the WBA. The activities of M.b2 and M.I1 are normally very low. However, the stimulus described above activates M.b2 on the right in a phase interval approximately two-thirds into the upstroke and M.I1 on the left in a phase interval at the beginning of the downstroke. The spikes tend to occur in bursts. These bursts are correlated with WBA-increasing 'hitches' (rapid changes in amplitude) on the right and WBA-decreasing hitches on the left. As fast 'phasic' responses, the burst-induced hitches are likely to account for the course-controlling 'body saccades' observed during free flight. For unknown reasons, M.I1 is activated by pattern motion but cannot conceivably assist the other muscles in altitude control. Unlike its homologues in larger flies (Musca domestica, Calliphora erythrocephala), M.III1 does not participate in optomotor flight control. Its activation seems to support the termination of flight and wing retraction at rest. The essential properties of the three pairs of muscles M.b1, M.b2 and M.I1 resemble those found in larger flies; the muscles are controlled by motion detectors with muscle-specific 'preferred directions' in the hexagonal array of retinal elements. Optomotor control of the three pairs of muscles in Drosophila melanogaster could explain most, but not all, of the WBA responses recorded so far.

摘要

果蝇黑腹果蝇的飞行控制是通过胸部两侧的微小肌肉群实现的。在固定飞行过程中,通过在果蝇眼前移动条纹图案来引发翅膀和肌肉的控制反应。例如,从右下角到左上角的图案运动向受试果蝇发出信号,表明其向右旋转航线偏差,同时向下平移高度位移。对视网膜图像位移的抵消反应是右侧推力和升力增加,主要通过增加该侧的翅膀拍击幅度(WBA)来实现。将这些反应与同时记录的两侧突出的基底肌M.b1和M.b2以及腋肌M.I1和M.III1中的动作电位进行比较表明,这些肌肉中的三块肌肉或多或少独立地作用于WBA,并有助于航向和高度的视动控制。在飞行过程中,M.b1几乎持续活跃,频率等于或略低于每个翅膀拍击周期1个峰值。峰值出现在这个周期的一个狭窄相位区间内,通常在上冲程向下冲程过渡的开始阶段。然而,上述视觉刺激会导致右侧M.b1出现明显的相位超前;峰值出现在上冲程结束前不久。这种相位变化伴随着WBA相对平滑的“紧张性”反应。M.b2和M.I1的活动通常非常低。然而,上述刺激在大约上冲程三分之二的相位区间内激活右侧的M.b2,在下冲程开始的相位区间内激活左侧的M.I1。峰值往往成簇出现。这些簇与右侧WBA增加的“急动”(幅度快速变化)和左侧WBA减少的急动相关。作为快速的“相位性”反应,簇诱导的急动可能解释了自由飞行过程中观察到的控制航向的“身体扫视”。出于未知原因,M.I1被图案运动激活,但难以想象它能协助其他肌肉进行高度控制。与较大果蝇(家蝇、红头丽蝇)中的同源物不同,M.III1不参与视动飞行控制。它的激活似乎支持飞行的终止和休息时翅膀的缩回。M.b1、M.b2和M.I1这三对肌肉的基本特性与在较大果蝇中发现的特性相似;这些肌肉由视网膜元素六边形阵列中具有肌肉特异性“偏好方向”的运动探测器控制。果蝇黑腹果蝇中这三对肌肉的视动控制可以解释到目前为止记录的大部分但不是全部的WBA反应。

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