Cabrera Stephanie, Theobald Jamie C
Department of Biological Science, Florida International University Miami, FL, USA.
Front Behav Neurosci. 2013 Jul 2;7:76. doi: 10.3389/fnbeh.2013.00076. eCollection 2013.
As a fly flies through its environment, static objects produce moving images on its retina, and this optic flow is essential for steering and course corrections. Different types of rotation and translation produce unique flow fields, which fly brains are wired to identify. However, a feature of optic flow unique to translational motion is that adjacent images may move across the retina at different speeds, depending on their distance from the observer. Many insects take advantage of this depth cue, called motion parallax, to determine the distance to objects. We wanted to know if differential object speeds affect the corrective responses of fruit flies when they experience unplanned course deviations. We presented tethered flying flies with optic flow and measured their corrective responses to sideways perturbations of images with different relative forward speeds. We found that flying flies attend to the relative speed of dots during forward motion, and adjust their corrective responses to sideslip deviations depending on this cue. With no other distinguishing features (such as brightness or size), flies mounted a greater response to sideways deviations that were signaled by faster moving dots in the forward flow field, those that appeared radially closer by their speeds. This is consistent with the interpretation that fruit flies attend to seemingly nearer objects, and correct more strongly when they indicate a perturbation.
当苍蝇在其周围环境中飞行时,静止的物体在其视网膜上产生移动的图像,这种光流对于转向和航线校正至关重要。不同类型的旋转和平移会产生独特的流场,苍蝇的大脑能够识别这些流场。然而,平移运动特有的光流特征是,相邻图像可能会以不同速度在视网膜上移动,这取决于它们与观察者的距离。许多昆虫利用这种称为运动视差的深度线索来确定与物体的距离。我们想知道,当果蝇经历意外的航线偏差时,物体的不同速度是否会影响它们的校正反应。我们让被束缚飞行的果蝇接触光流,并测量它们对具有不同相对前进速度的图像横向扰动的校正反应。我们发现,飞行中的果蝇在向前运动时会关注点的相对速度,并根据这一线索调整它们对侧滑偏差的校正反应。在没有其他显著特征(如亮度或大小)的情况下,果蝇对向前流场中移动速度更快的点所指示的横向偏差反应更大,这些点通过速度显示出在径向更近的位置。这与果蝇关注看似更近的物体,并在它们表明存在扰动时更强烈地进行校正的解释是一致的。