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Published on: July 22, 2014
Suppression of cortical NMDA receptor function prevents development of orientation selectivity in the primary visual
1Department of Anatomy, Visual/Motor Neuroscience Division, Virginia Commonwealth University School of Medicine, Richmond, Virginia 23298-0709, USA. aramoa@hsc.vcu.edu
Abstract:
Selectivity to visual stimulus orientation is a basic cortical functional property believed to be crucial for normal vision. Maturation of this neuronal property requires neural activity. Still, it is unclear what might be the molecular basis for such activity-dependent processes and whether activity has an instructive or permissive role in development of orientation selectivity. There is strong evidence that the NMDA subtype of the glutamate receptor regulates activity-dependent mechanisms of ocular dominance plasticity during cortical development. For this reason, we have hypothesized that the NMDA receptor participates in activity-dependent mechanisms that sculpt orientation selectivity of cortical neurons. We used chronic in vivo infusion of antisense oligodeoxynucleotides (ODNs) to suppress NMDA receptor function in primary visual cortex during the period when orientation selectivity develops in ferrets. Chronic suppression of NMDA receptor function prevented the development of orientation and stimulus size selectivity in most cortical cells tested. In contrast, treatment with control sense or missense ODNs did not affect development of orientation selectivity, indicating specificity of effects. Importantly, antisense ODN treatment did not impair visually driven activity, which is required for development to occur. Moreover, orientation selectivity of cortical cells was not disrupted by antisense ODN treatment in mature animals, indicating developmental relevance of the effects. In conclusion, our findings document for the first time that cortical NMDA receptors are essential for the maturation of orientation selectivity. This result supports the notion that activity has an instructive role in sculpting the connections that underlie orientation selectivity in visual cortex.
Insights
The NMDA receptor is essential for developing orientation selectivity in the visual cortex. Suppressing this receptor during development prevents normal visual processing, highlighting its instructive role.
Area of Science:
- Neuroscience
- Developmental Neuroscience
- Visual System Research
Background:
- Orientation selectivity is a fundamental visual cortex function crucial for vision.
- Neural activity is required for the maturation of orientation selectivity.
- The role of molecular mechanisms, particularly NMDA receptors, in this process is not fully understood.
Purpose of the Study:
- To investigate the role of the NMDA receptor in the activity-dependent development of orientation selectivity in the visual cortex.
- To determine if NMDA receptor function is essential for sculpting neuronal connections underlying orientation selectivity.
Main Methods:
- Utilized chronic in vivo infusion of antisense oligodeoxynucleotides (ODNs) to suppress NMDA receptor function in ferret primary visual cortex during development.
- Administered control sense or missense ODNs as controls to ensure specificity.
- Assessed the development of orientation and stimulus size selectivity in cortical neurons.
Main Results:
- Chronic suppression of NMDA receptor function significantly inhibited the development of orientation and stimulus size selectivity.
- Control ODN treatments did not affect the development of orientation selectivity, confirming the specificity of the antisense ODNs.
- Visually driven activity remained intact, and orientation selectivity in mature animals was unaffected, underscoring the developmental importance of NMDA receptors.
Conclusions:
- Cortical NMDA receptors are indispensable for the maturation of orientation selectivity.
- These findings support an instructive role for neural activity in shaping visual cortical circuits.
- The study provides the first evidence for the essential role of NMDA receptors in this critical developmental process.

