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Effects of Fixational Eye Movements on Retinal Ganglion Cell Responses: A Modelling Study

机译:眼球注视运动对视网膜神经节细胞反应的影响:模型研究

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摘要

Visual response properties of retinal ganglion cells (GCs), the retinal output neurons, are shaped by numerous processes and interactions within the retina. In particular, amacrine cells are known to form microcircuits that affect GC responses in specific ways. So far, relatively little is known about the influence of retinal processing on GC responses under naturalistic viewing conditions, in particular in the presence of fixational eye movements. Here we used a detailed model of the mammalian retina to investigate possible effects of fixational eye movements on retinal GC activity. Populations of linear, sustained (parvocellular, PC) and nonlinear, transient (magnocellular, MC) GCs were simulated during fixation of a star-shaped stimulus, and two distinct effects were found: (1) a fading of complete wedges of the star and (2) an apparent splitting of stimulus lines. Both effects only occur in MC-cells, and an analysis shows that fading is caused by an expression of the aperture problem in retinal GCs, and the splitting effect by spatiotemporal nonlinearities in the MC-cell receptive field. These effects strongly resemble perceived instabilities during fixation of the same stimulus, and we propose that these illusions may have a retinal origin. We further suggest that in this case two parallel retinal streams send conflicting, rather than complementary, information to the higher visual system, which here leads to a dominant influence of the MC pathway. Similar situations may be common during natural vision, since retinal processing involves numerous nonlinearities.
机译:视网膜神经节细胞(GCs),即视网膜输出神经元的视觉反应特性,是由视网膜内的许多过程和相互作用所决定的。特别地,已知无长突细胞会形成以特定方式影响GC响应的微电路。到目前为止,人们对在自然观察条件下,特别是在存在固定眼动的情况下,视网膜处理对GC反应的影响知之甚少。在这里,我们使用了哺乳动物视网膜的详细模型来研究注视眼动对视网膜GC活性的可能影响。在固定星形刺激过程中模拟了线性,持续性(细小细胞,PC)和非线性,瞬态(磁性细胞,MC)GC的种群,发现了两种不同的作用:(1)星形的完整楔形消失和(2)刺激线明显分裂。两种效应仅在MC细胞中发生,并且分析表明,褪色是由视网膜GC中孔径问题的表达引起的,以及由MC细胞感受野中的时空非线性引起的分裂效应。这些效果与固定相同刺激时的不稳定性非常相似,我们建议这些错觉可能起源于视网膜。我们进一步建议,在这种情况下,两个平行的视网膜流向较高的视觉系统发送冲突的信息,而不是互补的信息,从而导致MC通路的显性影响。在自然视觉期间,类似的情况可能很常见,因为视网膜处理涉及许多非线性。

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