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Neuronal representation of visual motion and orientation in the fly medulla

机译:苍蝇延髓中视觉运动和方向的神经元表示

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摘要

In insects, the first extraction of motion and direction clues from local brightness modulations is thought to take place in the medulla. However, whether and how these computations are represented in the medulla stills remain widely unknown, because electrical recording of the neurons in the medulla is difficult. As an effort to overcome this difficulty, we employed local electroporation in vivo in the medulla of the blowfly (Calliphora vicina) to stain small ensembles of neurons with a calcium-sensitive dye. We studied the responses of these neuronal ensembles to spatial and temporal brightness modulations and found selectivity for grating orientation. In contrast, the responses to the two opposite directions of motion of a grating with the same orientation were similar in magnitude, indicating that strong directional selectivity is either not present in the types of neurons covered by our data set, or that direction-selective signals are too closely spaced to be distinguished by our calcium imaging. The calcium responses also showed a bell-shaped dependency on the temporal frequency of drifting gratings, with an optimum higher than that observed in one of the subsequent processing stages, i.e., the lobula plate. Medulla responses were elicited by on- as well as off-stimuli with some spatial heterogeneity in the sensitivity for “on” and “off”, and in the polarity of the responses. Medulla neurons thus show similarities to some established principles of motion and edge detection in the vertebrate visual system.
机译:在昆虫中,从局部亮度调制中首先提取出运动和方向线索是在延髓中进行的。但是,由于髓质中神经元的电记录是困难的,因此在髓质釜中是否以及如何表示这些计算仍然是未知的。为了克服这一困难,我们在体内的蝇fly(Calliphora vicina)的延髓中进行了局部电穿孔,以钙敏感染料对神经元的小团进行染色。我们研究了这些神经元合奏对时空亮度调制的响应,并发现了光栅取向的选择性。相反,对具有相同方向的光栅的两个相反运动方向的响应在大小上相似,表明在我们的数据集覆盖的神经元类型中不存在强的方向选择性,或者方向选择信号距离太近,无法通过我们的钙成像来区分。钙响应还显示出对漂移光栅的时间频率呈钟形依赖性,其最佳值高于在随后的加工阶段之一即小叶板中观察到的最佳频率。髓质反应是由上,下刺激引起的,在“开”和“关”的敏感性以及响应的极性上存在一定的空间异质性。因此,髓质神经元显示出与脊椎动物视觉系统中某些确定的运动和边缘检测原理相似。

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