4.7 Article

Functional Differentiation of Mouse Visual Cortical Areas Depends upon Early Binocular Experience

期刊

JOURNAL OF NEUROSCIENCE
卷 41, 期 7, 页码 1470-1488

出版社

SOC NEUROSCIENCE
DOI: 10.1523/JNEUROSCI.0548-20.2020

关键词

critical period; functional differentiation; higher visual areas; monocular deprivation; visual cortex; ocular dominance plasticity

资金

  1. National Institutes of Health (NIH) Director's New Innovator Award [DP2EY-024504-01]
  2. NIH [1R01-EY-029490-01A1]
  3. Searle Scholars Award
  4. Klingenstein Fellowship
  5. National Science Foundation Graduate Research Fellowship [DGE-1321846]
  6. Knights Templar Foundation [207834, 210510]

向作者/读者索取更多资源

This study investigates the impact of binocular visual input on the functional differentiation of visual cortical areas, finding that imbalanced binocular vision during development affects the spatiotemporal tuning of neurons in V1, LM, and PM, and reshapes the tuning properties driven by the two eyes. Results reveal that balanced binocular vision is essential for driving the functional differentiation of visual cortical areas during development.
The mammalian visual cortex contains multiple retinotopically defined areas that process distinct features of the visual scene. Little is known about what guides the functional differentiation of visual cortical areas during development. Recent studies in mice have revealed that visual input from the two eyes provides spatiotemporally distinct signals to primary visual cortex (V1), such that contralateral eye-dominated V1 neurons respond to higher spatial frequencies than ipsilateral eye-dominated neurons. To test whether binocular visual input drives the differentiation of visual cortical areas, we used two-photon calcium imaging to characterize the effects of juvenile monocular deprivation (MD) on the responses of neurons in V1 and two higher visual areas, LM (lateromedial) and PM (posteromedial). In adult mice of either sex, we find that MD prevents the emergence of distinct spatiotemporal tuning in V1, LM, and PM. We also find that, within each of these areas, MD reorganizes the distinct spatiotemporal tuning properties driven by the two eyes. Moreover, we find a relationship between speed tuning and ocular dominance in all three areas that MD preferentially disrupts in V1, but not in LM or PM. Together, these results reveal that balanced binocular vision during development is essential for driving the functional differentiation of visual cortical areas. The higher visual areas of mouse visual cortex may provide a useful platform for investigating the experience-dependent-mechanisms that set up the specialized processing within neocortical areas during postnatal development.

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