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一种感觉运动解码器,可将纹外区域MT中的神经反应转化为平稳跟踪眼球运动。

A sensory-motor decoder that transforms neural responses in extrastriate area MT into smooth pursuit eye movements.

作者信息

Behling Stuart, Lisberger Stephen G

机构信息

Department of Neurobiology, Duke University School of Medicine Durham, North Carolina, USA.

出版信息

bioRxiv. 2023 May 13:2023.05.12.540526. doi: 10.1101/2023.05.12.540526.

Abstract

Visual motion drives smooth pursuit eye movements through a sensory-motor decoder that uses multiple parallel components and neural pathways to transform the population response in extrastriate area MT into movement. We evaluated the decoder by challenging pursuit in monkeys with reduced motion reliability created by reducing coherence of motion in patches of dots. Reduced dot coherence caused deficits in both the initiation of pursuit and steady-state tracking, revealing the paradox of steady-state eye speeds that fail to accelerate to target speed in spite of persistent image motion. We recorded neural responses to reduced dot coherence in MT and found a decoder that transforms MT population responses into eye movements. During pursuit initiation, decreased dot coherence reduces MT population response amplitude without changing the preferred speed at the peak of the population response. The successful decoder reproduces the measured eye movements by multiplication of (i) the estimate of target speed from the peak of the population response with (ii) visual-motor gain based on the amplitude of the population response. During steady-state tracking, the decoder that worked for pursuit initiation failed. It predicted eye acceleration to target speed even when monkeys' eye speeds were steady at a level well below target speed. We can account for the effect of dot coherence on steady-state eye speed if sensorymotor gain also modulates the eye velocity positive feedback that normally sustains perfect steadystate tracking. Then, poor steady-state tracking persists because of balance between deceleration caused by low positive feedback gain and acceleration driven by MT.

摘要

视觉运动通过一种感觉运动解码器驱动平稳跟踪眼球运动,该解码器利用多个并行组件和神经通路将纹外区域MT中的群体反应转化为运动。我们通过降低点斑运动的连贯性来降低运动可靠性,从而对猴子的跟踪能力进行挑战,以此评估该解码器。点连贯性降低导致跟踪启动和稳态跟踪均出现缺陷,揭示了尽管图像持续运动,但稳态眼球速度却未能加速至目标速度这一矛盾现象。我们记录了MT中对降低的点连贯性的神经反应,并找到了一种将MT群体反应转化为眼球运动的解码器。在跟踪启动期间,点连贯性降低会降低MT群体反应幅度,而不会改变群体反应峰值处的偏好速度。成功的解码器通过将(i)群体反应峰值处的目标速度估计值与(ii)基于群体反应幅度的视觉运动增益相乘来再现测量到的眼球运动。在稳态跟踪期间,适用于跟踪启动的解码器失效。即使猴子的眼球速度稳定在远低于目标速度的水平,它仍预测眼球会加速至目标速度。如果感觉运动增益也调节通常维持完美稳态跟踪的眼球速度正反馈,我们就能解释点连贯性对稳态眼球速度的影响。那么,由于低正反馈增益导致的减速与MT驱动的加速之间的平衡,较差的稳态跟踪就会持续存在。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53c1/10197634/d8fcba8f0119/nihpp-2023.05.12.540526v2-f0001.jpg

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