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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Contralateral Bias of High Spatial Frequency Tuning and Cardinal Direction Selectivity in Mouse Visual Cortex
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Contralateral Bias of High Spatial Frequency Tuning and Cardinal Direction Selectivity in Mouse Visual Cortex

机译:小鼠视觉皮层高空间频率调谐和基本方向选择性的对侧偏差

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摘要

Binocular mechanisms for visual processing are thought to enhance spatial acuity by combining matched input from the two eyes. Studies in the primary visual cortex of carnivores and primates have confirmed that eye-specific neuronal response properties are largely matched. In recent years, the mouse has emerged as a prominent model for binocular visual processing, yet little is known about the spatial frequency tuning of binocular responses in mouse visual cortex. Using calcium imaging in awake mice of both sexes, we show that the spatial frequency preference of cortical responses to the contralateral eye is similar to 35% higher than responses to the ipsilateral eye. Furthermore, we find that neurons in binocular visual cortex that respond only to the contralateral eye are tuned to higher spatial frequencies. Binocular neurons that are well matched in spatial frequency preference are also matched in orientation preference. In contrast, we observe that binocularly mismatched cells are more mismatched in orientation tuning. Furthermore, we find that contralateral responses are more direction-selective than ipsilateral responses and are strongly biased to the cardinal directions. The contralateral bias of high spatial frequency tuning was found in both awake and anesthetized recordings. The distinct properties of contralateral cortical responses may reflect the functional segregation of direction-selective, high spatial frequency-preferring neurons in earlier stages of the central visual pathway. Moreover, these results suggest that the development of binocularity and visual acuity may engage distinct circuits in the mouse visual system.
机译:通过组合两只眼睛的匹配输入来思考视觉处理的双目机制来增强空间敏感。在肉食病毒和灵长类动物的主要视觉皮层中的研究证实了眼睛特异性神经元反应性质主要匹配。近年来,鼠标已成为双目视觉处理的突出模型,但关于小鼠视觉皮层中双目反应的空间频率调整知之甚少。使用钙成像在唤醒两种性别的小鼠中,我们表明皮质反应对对侧眼的空间频率偏好类似于比对同侧的反应高的35%。此外,我们发现双目视觉皮层中的神经元仅对对侧眼睛响应被调整为更高的空间频率。在空间频率偏好中匹配的双目神经元也匹配方向偏好。相反,我们观察到,双眼不匹配的细胞在方向调谐中更加错配。此外,我们发现对侧反应比同侧反应更方向,并且强烈偏向于基本方向。在唤醒和麻醉录音中发现了高空间频率调整的对侧偏差。对侧皮质反应的不同性质可以反映中央视觉途径的早期阶段的方向选择性高空间频率偏美神经元的功能分离。此外,这些结果表明双眼和视敏度的发展可以在鼠标视觉系统中接合不同的电路。

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