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通过天体罗盘线索的时间补偿组合对方位方向进行编码。

Coding of azimuthal directions via time-compensated combination of celestial compass cues.

作者信息

Pfeiffer Keram, Homberg Uwe

机构信息

Department of Biology, Animal Physiology, University of Marburg, 35032 Marburg, Germany.

出版信息

Curr Biol. 2007 Jun 5;17(11):960-5. doi: 10.1016/j.cub.2007.04.059. Epub 2007 May 24.

Abstract

Many animals use the sun as a reference for spatial orientation [1-3]. In addition to sun position, the sky provides two other sources of directional information, a color gradient [4] and a polarization pattern [5]. Work on insects has predominantly focused on celestial polarization as an orientation cue [6, 7]. Relying on sky polarization alone, however, poses the following two problems: E vector orientations in the sky are not suited to distinguish between the solar and antisolar hemisphere of the sky, and the polarization pattern changes with changing solar elevation during the day [8, 9]. Here, we present neurons that overcome both problems in a locust's brain. The spiking activity of these neurons depends (1) on the E vector orientation of dorsally presented polarized light, (2) on the azimuthal, i.e., horizontal, direction, and (3) on the wavelength of an unpolarized light source. Their tuning to these stimuli matches the distribution of a UV/green chromatic contrast as well as the polarization of natural skylight and compensates for changes in solar elevation during the day. The neurons are, therefore, suited to code for solar azimuth by concurrent combination of signals from the spectral gradient, intensity gradient, and polarization pattern of the sky.

摘要

许多动物利用太阳作为空间定向的参考[1-3]。除了太阳位置,天空还提供另外两种方向信息来源,一种是颜色梯度[4],另一种是偏振模式[5]。关于昆虫的研究主要集中在将天体偏振作为一种定向线索[6,7]。然而,仅依靠天空偏振存在以下两个问题:天空中的电场矢量(E矢量)方向不适合区分天空的太阳半球和反太阳半球,并且偏振模式会随着白天太阳高度的变化而改变[8,9]。在此,我们展示了蝗虫大脑中能够克服这两个问题的神经元。这些神经元的脉冲活动取决于:(1)背侧呈现的偏振光的E矢量方向;(2)方位角,即水平方向;以及(3)非偏振光源的波长。它们对这些刺激的调谐与紫外/绿色色度对比度的分布以及自然天空光的偏振相匹配,并补偿白天太阳高度的变化。因此,这些神经元适合通过同时组合来自天空的光谱梯度、强度梯度和偏振模式的信号来编码太阳方位角。

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