Centre de Recherches sur la Cognition Animale, Université de Toulouse, and Centre National de la Recherche Scientifique (CNRS), F-31062 Toulouse, France.
J Neurosci. 2011 Aug 10;31(32):11443-56. doi: 10.1523/JNEUROSCI.0995-11.2011.
The honeybee Apis mellifera represents a valuable model for studying the neural segregation and integration of visual information. Vision in honeybees has been extensively studied at the behavioral level and, to a lesser degree, at the physiological level using intracellular electrophysiological recordings of single neurons. However, our knowledge of visual processing in honeybees is still limited by the lack of functional studies of visual processing at the circuit level. Here we contribute to filling this gap by providing a neuroanatomical and neurophysiological characterization at the circuit level of a practically unstudied visual area of the bee brain, the anterior optic tubercle (AOTu). First, we analyzed the internal organization and neuronal connections of the AOTu. Second, we established a novel protocol for performing optophysiological recordings of visual circuit activity in the honeybee brain and studied the responses of AOTu interneurons during stimulation of distinct eye regions. Our neuroanatomical data show an intricate compartmentalization and connectivity of the AOTu, revealing a dorsoventral segregation of the visual input to the AOTu. Light stimuli presented in different parts of the visual field (dorsal, lateral, or ventral) induce distinct patterns of activation in AOTu output interneurons, retaining to some extent the dorsoventral input segregation revealed by our neuroanatomical data. In particular, activity patterns evoked by dorsal and ventral eye stimulation are clearly segregated into distinct AOTu subunits. Our results therefore suggest an involvement of the AOTu in the processing of dorsoventrally segregated visual information in the honeybee brain.
蜜蜂 Apis mellifera 是研究视觉信息神经分离和整合的有价值模型。在行为层面上,蜜蜂的视觉已经得到了广泛的研究,在生理层面上,也使用单细胞神经元的细胞内电生理记录进行了较少的研究。然而,我们对蜜蜂视觉处理的了解仍然受到缺乏在电路层面上进行视觉处理的功能研究的限制。在这里,我们通过提供蜜蜂大脑中一个几乎未被研究的视觉区域——前视神经节(AOTu)的神经解剖学和神经生理学特征来填补这一空白。首先,我们分析了 AOTu 的内部组织和神经元连接。其次,我们建立了一个新的协议,用于在蜜蜂大脑中进行视觉电路活动的光生理记录,并研究了 AOTu 中间神经元在刺激不同眼部区域时的反应。我们的神经解剖学数据显示 AOTu 有复杂的分区和连接,揭示了 AOTu 中视觉输入的背腹侧分离。在不同的视野区域(背侧、外侧或腹侧)呈现的光刺激会在 AOTu 输出中间神经元中诱导出不同的激活模式,在一定程度上保留了我们的神经解剖学数据中揭示的背腹侧输入分离。特别是,由背侧和腹侧眼部刺激引起的活动模式明显分为不同的 AOTu 亚单位。因此,我们的结果表明 AOTu 参与了蜜蜂大脑中背腹侧分离视觉信息的处理。