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Linking lateral interactions in flicker perception to lateral geniculate nucleus cell responses

机译:将闪烁感知中的横向相互作用与外侧膝状核细胞反应联系起来

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摘要

The perception of flicker strength in a circular stimulus can be changed by altering the relative temporal phase of a simultaneously flickering surrounding annulus: perceived flicker is weak when the two stimuli are modulated in-phase and strong when the two are modulated in counter-phase. Previously, we found that responses of single neurons in the monkey lateral geniculate nucleus (LGN) to such stimuli resemble the psychophysical data. On the basis of the resemblance in data, it was proposed that the physiological basis for the flicker perception may be present as proximal as the LGN. To strengthen this hypothesis, we simulated the response of an array of LGN neurons, the receptive fields (RFs) of which are covered by the stimulus. The simulations were based upon single-cell recordings in the LGN of anaesthetized marmosets (Callithrix jacchus) using the same stimuli as previously. The measurements were repeated for different spatial displacement between the stimulus and the RF. The responses depended upon the spatial displacement and the relative phase between centre and surround stimuli. The neuronal responses can be adequately described by a difference-of-Gaussians (DOG) model with a time delay in the RF surround. The model responses at different displacements can be considered to be identical to the output of an array of ideal and identical LGN cells with different RF locations. To be able to describe physiological and psychophysical data, obtained at different stimulus contrasts, it was necessary to consider previously described non-linear interactions between the RF centres and surrounds. We applied a spatial peak-to-trough detector with a subsequent saturation and threshold to simulate a simple cortical decision mechanism. The output of this peak-to-trough detector could adequately describe the psychophysical data.
机译:可以通过更改同时闪烁的周围环空的相对时间相位来更改圆形刺激中闪烁强度的感知:当对两个刺激进行同相调制时,感知的闪烁较弱;而当对两个刺激进行反相调制时,感知的闪烁较弱。以前,我们发现猴子外侧膝状核(LGN)中的单个神经元对这种刺激的反应类似于心理物理数据。根据数据的相似性,提出闪烁感知的生理基础可能与LGN一样近。为了加强这一假设,我们模拟了一系列LGN神经元的响应,这些神经元的感受野(RF)受到刺激的覆盖。该模拟基于麻醉的mar猴(Callithrix jacchus)的LGN中LGN中的单细胞记录,并使用与以前相同的刺激。对刺激和RF之间的不同空间位移重复进行测量。响应取决于空间位移以及中心和周围刺激之间的相对相位。神经元反应可以通过高斯差分(DOG)模型适当描述,在RF周围具有时间延迟。可以将在不同位移下的模型响应视为与具有不同RF位置的理想且相同的LGN单元阵列的输出相同。为了能够描述在不同刺激对比下获得的生理和心理物理数据,有必要考虑先前描述的射频中心与周围环境之间的非线性相互作用。我们应用了具有后续饱和度和阈值的空间峰谷探测器,以模拟简单的皮质决策机制。该峰谷探测器的输出可以充分描述心理物理数据。

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