首页> 外文期刊>Journal of Computational Neuroscience >Frontal eye field inactivation alters the readout of superior colliculus activity for saccade generation in a task-dependent manner
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Frontal eye field inactivation alters the readout of superior colliculus activity for saccade generation in a task-dependent manner

机译:正面眼域灭活改变了以任务依赖的方式为扫视生成的优越小集活动的读数

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Saccades require a spatiotemporal transformation of activity between the intermediate layers of the superior colliculus (iSC) and downstream brainstem burst generator. The dynamic linear ensemble-coding model (Goossens and Van Opstal 2006) proposes that each iSC spike contributes a fixed mini-vector to saccade displacement. Although biologically-plausible, this model assumes cortical areas like the frontal eye fields (FEF) simply provide the saccadic goal to be executed by the iSC and brainstem burst generator. However, the FEF and iSC operate in unison during saccades, and a pathway from the FEF to the brainstem burst generator that bypasses the iSC exists. Here, we investigate the impact of large yet reversible inactivation of the FEF on iSC activity in the context of the model across four saccade tasks. We exploit the overlap of saccade vectors generated when the FEF is inactivated or not, comparing the number of iSC spikes for metrically-matched saccades. We found that the iSC emits fewer spikes for metrically-matched saccades during FEF inactivation. The decrease in spike count is task-dependent, with a greater decrease accompanying more cognitively-demanding saccades. Our results show that FEF integrity influences the readout of iSC activity in a task-dependent manner. We propose that the dynamic linear ensemble-coding model be modified so that FEF inactivation increases the gain of a readout parameter, effectively increasing the influence of a single iSC spike. We speculate that this modification could be instantiated by FEF and iSC pathways to the cerebellum that could modulate the excitability of the brainstem burst generator.
机译:扫视需要在上芯片(ISC)和下游脑干爆发发生器的中间层之间的时颞转化的活性。动态线性合奏编码模型(Goossens和Van Opstal 2006)提出每个ISC尖峰都会为扫视位移提供固定的迷你矢量。虽然生物合理性,但该模型假设皮质区域,如前眼领域(FEF),只需提供由ISC和脑干突发发生器执行的扫视目标。然而,FEF和ISC在扫视期间并在扫描期间在展开ISC中的FEF到脑干突发发生器的路径。在这里,我们在跨四个扫视任务的模型的背景下调查大型且可逆失真对FEF对ISC活动的影响。我们利用扫描FEF灭活时产生的扫视载体的重叠,比较了MATRALLIBLIBLIBLED SACCADES的ISC峰值数量。我们发现ISC在FEF灭活期间发出较少的刺激扫描巨头。尖峰计数的减少是依赖于任务的,随着更多认知苛刻的扫视,伴随着更大的减少。我们的结果表明,FEF完整性以任务依赖的方式影响ISC活动的读数。我们建议修改动态线性集成编码模型,使得FEF失活增加读出参数的增益,有效地增加了单个ISC峰值的影响。我们推测,这种修改可以通过FEF和ISC途径将该修改用于能够调节脑干爆发发生器的兴奋的小脑。

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