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调谐曲线与群体反应以及感受野重新映射的感知后果

Tuning curves vs. population responses, and perceptual consequences of receptive-field remapping.

作者信息

Qian Ning, Goldberg Michael E, Zhang Mingsha

机构信息

Department of Neuroscience and Zuckerman Institute, Columbia University, New York, NY, United States.

Department of Physiology and Cellular Biophysics, Columbia University, New York, NY, United States.

出版信息

Front Comput Neurosci. 2023 Jan 13;16:1060757. doi: 10.3389/fncom.2022.1060757. eCollection 2022.

Abstract

Sensory processing is often studied by examining how a given neuron responds to a parameterized set of stimuli (tuning curve) or how a given stimulus evokes responses from a parameterized set of neurons (population response). Although tuning curves and the corresponding population responses contain the same information, they can have different properties. These differences are known to be important because the perception of a stimulus should be decoded from its population response, not from any single tuning curve. The differences are less studied in the spatial domain where a cell's spatial tuning curve is simply its receptive field (RF) profile. Here, we focus on evaluating the common belief that perrisaccadic forward and convergent RF shifts lead to forward (translational) and convergent (compressive) perceptual mislocalization, respectively, and investigate the effects of three related factors: decoders' awareness of RF shifts, changes of cells' covering density near attentional locus (the saccade target), and attentional response modulation. We find that RF shifts produce either no shift or an opposite shift of the population responses depending on whether or not decoders are aware of the RF shifts. Thus, forward RF shifts do not predict forward mislocalization. However, convergent RF shifts change cells' covering density for aware decoders (but not for unaware decoders) which may predict convergent mislocalization. Finally, attentional modulation adds a convergent component to population responses for stimuli near the target. We simulate the combined effects of these factors and discuss the results with extant mislocalization data. We speculate that perisaccadic mislocalization might be the flash-lag effect unrelated to perisaccadic RF remapping but to resolve the issue, one has to address the question of whether or not perceptual decoders are aware of RF shifts.

摘要

感觉处理通常通过检查给定神经元如何对一组参数化刺激做出反应(调谐曲线),或者给定刺激如何从一组参数化神经元中引发反应(群体反应)来进行研究。尽管调谐曲线和相应的群体反应包含相同的信息,但它们可能具有不同的特性。已知这些差异很重要,因为对刺激的感知应该从其群体反应中解码,而不是从任何单个调谐曲线中解码。在空间领域,这些差异的研究较少,在该领域中,细胞的空间调谐曲线简单来说就是其感受野(RF)轮廓。在这里,我们专注于评估一种普遍观点,即扫视前的向前和会聚RF移动分别导致向前(平移)和会聚(压缩)感知错误定位,并研究三个相关因素的影响:解码器对RF移动的意识、注意力焦点(扫视目标)附近细胞覆盖密度的变化以及注意力反应调制。我们发现,根据解码器是否意识到RF移动,RF移动会使群体反应要么不发生移动,要么发生相反的移动。因此,向前的RF移动并不能预测向前的错误定位。然而,会聚的RF移动会改变有意识解码器(但无意识解码器不会)的细胞覆盖密度,这可能预测会聚错误定位。最后,注意力调制会为目标附近刺激的群体反应添加一个会聚成分。我们模拟了这些因素的综合影响,并结合现有的错误定位数据讨论了结果。我们推测,扫视期间的错误定位可能是与扫视期间RF重新映射无关的闪光滞后效应,但要解决这个问题,必须解决感知解码器是否意识到RF移动的问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df7f/9880053/3286b5416862/fncom-16-1060757-g0001.jpg

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