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Robust coding of flow-field parameters by axo-axonal gap junctions between fly visual interneurons

机译:飞行视觉中子之间的轴-轴间隙连接对流场参数进行鲁棒编码

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Complex flight maneuvers require a sophisticated system to exploit the optic flow resulting from moving images of the environment projected onto the retina. In the fly's visual course control center, the lobula plate, 10 so-called vertical system (VS) cells are thought to match, with their complex receptive fields, the optic flow resulting from rotation around different body axes. However, signals of single VS cells are unreliable indicators of such optic flow parameters in the context of their noisy, texture-dependent input from local motion measurements. Here we propose an alternative encoding scheme based on network simulations of biophysically realistic compartmental models of VS cells. The simulations incorporate recent data about the highly selective connectivity between VS cells consisting of an electrical axo-axonal coupling between adjacent cells and a reciprocal inhibition between the most distant cells. We find that this particular wiring performs a linear interpolation between the output signals of VS cells, leading to a robust representation of the axis of rotation even in the presence of textureless patches of the visual surround.
机译:复杂的飞行操作需要复杂的系统来利用由投射到视网膜上的环境运动图像产生的光流。在苍蝇的视线控制中心,小叶板中,有10个所谓的垂直系统(VS)细胞被认为与其复杂的接收场相匹配,绕着不同的身体轴旋转而产生的光流。但是,单个VS电池的信号在来自本地运动测量的嘈杂的,与纹理相关的输入的上下文中,是此类光流参数的不可靠指标。在这里,我们提出了一种基于VS细胞生物物理逼真隔室模型的网络模拟的替代编码方案。这些模拟结合了有关VS细胞之间高度选择性连通性的最新数据,该数据包括相邻细胞之间的轴突-轴突电气耦合以及最远的细胞之间的相互抑制。我们发现,这种特殊的布线在VS单元的输出信号之间执行线性插值,即使在视觉环绕的无纹理斑块存在的情况下,也能可靠地表示旋转轴。

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