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Enhanced Spatial Resolution During Locomotion and Heightened Attention in Mouse Primary Visual Cortex

机译:运动过程中增强的空间分辨率和鼠标初级视觉皮层中的注意力增强

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摘要

We do not fully understand how behavioral state modulates the processing and transmission of sensory signals. Here, we studied the cortical representation of the retinal image in mice that spontaneously switched between a state of rest and a constricted pupil, and one of active locomotion and a dilated pupil, indicative of heightened attention. We measured the selectivity of neurons in primary visual cortex for orientation and spatial frequency, as well as their response gain, in these two behavioral states. Consistent with prior studies, we found that preferred orientation and spatial frequency remained invariant across states, whereas response gain increased during locomotion relative to rest. Surprisingly, relative gain, defined as the ratio between the gain during locomotion and the gain during rest, was not uniform across the population. Cells tuned to high spatial frequencies showed larger relative gain compared with those tuned to lower spatial frequencies. The preferential enhancement of high-spatial-frequency information was also reflected in our ability to decode the stimulus from population activity. Finally, we show that changes in gain originate from shifts in the operating point of neurons along a spiking nonlinearity as a function of behavioral state. Differences in the relative gain experienced by neurons with high and low spatial frequencies are due to corresponding differences in how these cells shift their operating points between behavioral states.>SIGNIFICANCE STATEMENT How behavioral state modulates the processing and transmission of sensory signals remains poorly understood. Here, we show that the mean firing rate and neuronal gain increase during locomotion as a result in a shift of the operating point of neurons. We define relative gain as the ratio between the gain of neurons during locomotion and rest. Interestingly, relative gain is higher in cells with preferences for higher spatial frequencies than those with low-spatial-frequency selectivity. This means that, during a state of locomotion and heightened attention, the population activity in primary visual cortex can support better spatial acuity, a phenomenon that parallels the improved spatial resolution observed in human subjects during the allocation of spatial attention.
机译:我们还没有完全了解行为状态如何调节感觉信号的处理和传输。在这里,我们研究了在静止状态和瞳孔缩小,自发运动和瞳孔扩大之一之间自发切换的小鼠视网膜图像的皮质表示,这表明注意力增强了。我们在这两种行为状态下测量了主视觉皮层中神经元对方向和空间频率的选择性以及它们的响应增益。与先前的研究一致,我们发现偏好取向和空间频率在各州之间保持不变,而在运动过程中相对于休息,响应增益增加。令人惊讶的是,相对增益定义为运动期间的增益与休息期间的增益之比,在整个人群中并不均匀。与调谐至较低空间频率的单元相比,调谐至较高空间频率的单元显示出较大的相对增益。高空间频率信息的优先增强还反映在我们从人口活动中解码刺激的能力中。最后,我们表明,增益的变化源于神经元工作点沿尖峰的非线性行为状态的变化。高和低空间频率的神经元所经历的相对增益的差异是由于这些细胞在行为状态之间转移其工作点的方式存在相应的差异。>意义声明行为状态如何调节感觉的处理和传递信号仍然知之甚少。在这里,我们显示运动过程中平均放电率和神经元增益增加,这是神经元工作点移动的结果。我们将相对增益定义为运动和休息期间神经元增益之间的比率。有趣的是,在那些偏好较高空间频率的小区中,相对增益要高于那些具有低空间频率选择性的小区。这意味着,在运动和注意力增强的状态下,主要视觉皮层中的种群活动可以支持更好的空间敏锐度,这种现象与在分配空间注意力时在人类受试者中观察到的提高的空间分辨率相似。

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