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果蝇额神经运动神经元中的互补运动调谐

Complementary motion tuning in frontal nerve motor neurons of the blowfly.

作者信息

Kauer Isabella, Borst Alexander, Haag Jürgen

机构信息

Department of Circuits-Computation-Models, Max-Planck-Institute of Neurobiology, Am Klopferspitz 18, 82152, Martinsried, Germany,

出版信息

J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2015 Apr;201(4):411-26. doi: 10.1007/s00359-015-0980-0. Epub 2015 Jan 31.

Abstract

Flies actively turn their head during flight to stabilize their gaze and reduce motion blur. This optomotor response is triggered by wide-field motion indicating a deviation from a desired flight path. We focus on the neuronal circuit that underlies this behavior in the blowfly Calliphora, studying the integration of optic flow in neck motor neurons that innervate muscles controlling head rotations. Frontal nerve motor neurons (FNMNs) have been described anatomically and recorded from extracellularly before. Here, we assign for the first time to five anatomical classes of FNMNs their visual motion tuning. We measured their responses to optic flow, as produced by rotations around particular body axes, recording intracellularly from single axons. Simultaneous injection of Neurobiotin allowed for the anatomical characterization of the recorded cells and revealed coupling patterns with neighboring neurons. The five FNMN classes can be divided into two groups that complement each other, regarding their preferred axes of rotation. The tuning matches the pulling planes of their innervated neck muscles, serving to rotate the head around its longitudinal axis. Anatomical and physiological findings demonstrate a synaptic connection between one FNMN and a well-described descending neuron, elucidating one important step from visual motion integration to neck motor output.

摘要

苍蝇在飞行过程中会主动转动头部,以稳定其视线并减少运动模糊。这种视动反应由表明偏离期望飞行路径的广域运动触发。我们聚焦于家蝇(Calliphora)中这种行为背后的神经回路,研究在支配控制头部旋转肌肉的颈部运动神经元中视觉流的整合。额神经运动神经元(FNMNs)之前已从解剖学角度进行过描述,并在细胞外进行过记录。在此,我们首次为五类解剖学上的FNMNs确定了它们的视觉运动调谐特性。我们测量了它们对围绕特定身体轴旋转所产生的视觉流的反应,从单个轴突进行细胞内记录。同时注射神经生物素可对记录的细胞进行解剖学特征描述,并揭示与相邻神经元的耦合模式。就其偏好的旋转轴而言,这五类FNMNs可分为两组,它们相互补充。这种调谐与它们所支配的颈部肌肉的牵拉平面相匹配,用于使头部围绕其纵轴旋转。解剖学和生理学研究结果表明,一个FNMN与一个已详细描述的下行神经元之间存在突触连接,阐明了从视觉运动整合到颈部运动输出的一个重要步骤。

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