Related Experiment Video
Updated: Mar 12, 2026

Ex Vivo Optogenetic Dissection of Fear Circuits in Brain Slices
Published on: April 5, 2016
Nogo Receptor 1 Confines a Disinhibitory Microcircuit to the Critical Period in Visual Cortex
Céleste-Élise Stephany1, Taruna Ikrar2, Collins Nguyen2
1Developmental Neuroscience Program, Saban Research Institute, Children's Hospital Los Angeles, Department of Pediatrics, Keck School of Medicine, University of Southern California, Los Angeles, California 90027, and.
Abstract:
A characteristic of the developing mammalian visual system is a brief interval of plasticity, termed the "critical period," when the circuitry of primary visual cortex is most sensitive to perturbation of visual experience. Depriving one eye of vision (monocular deprivation [MD]) during the critical period alters ocular dominance (OD) by shifting the responsiveness of neurons in visual cortex to favor the nondeprived eye. A disinhibitory microcircuit involving parvalbumin-expressing (PV) interneurons initiates this OD plasticity. The gene encoding the neuronal nogo-66-receptor 1 (ngr1/rtn4r) is required to close the critical period. Here we combined mouse genetics, electrophysiology, and circuit mapping with laser-scanning photostimulation to investigate whether disinhibition is confined to the critical period by ngr1 We demonstrate that ngr1 mutant mice retain plasticity characteristic of the critical period as adults, and that ngr1 operates within PV interneurons to restrict the loss of intracortical excitatory synaptic input following MD in adult mice, and this disinhibition induces a "lower PV network configuration" in both critical-period wild-type mice and adult ngr1-/- mice. We propose that ngr1 limits disinhibition to close the critical period for OD plasticity and that a decrease in PV expression levels reports the diminished recent cumulative activity of these interneurons.
Significance Statement:
Life experience refines brain circuits throughout development during specified critical periods. Abnormal experience during these critical periods can yield enduring maladaptive changes in neural circuits that impair brain function. In the developing visual system, visual deprivation early in life can result in amblyopia (lazy-eye), a prevalent childhood disorder comprising permanent deficits in spatial vision. Here we identify that the nogo-66 receptor 1 gene restricts an early and essential step in OD plasticity to the critical period. These findings link the emerging circuit-level description of OD plasticity to the genetic regulation of the critical period. Understanding how plasticity is confined to critical periods may provide clues how to better treat amblyopia.
Insights
The nogo-66 receptor 1 (ngr1) gene closes the critical period for visual plasticity by regulating parvalbumin interneurons. Ngr1 mutant mice retain plasticity into adulthood, suggesting ngr1 controls this process by limiting disinhibition.
Area of Science:
- Neuroscience
- Developmental Biology
- Genetics
Background:
- The mammalian visual system has a critical period for plasticity, where visual experience shapes neural circuits.
- Monocular deprivation (MD) during this period alters ocular dominance (OD) by favoring the non-deprived eye.
- Parvalbumin-expressing (PV) interneurons and the nogo-66 receptor 1 (ngr1) gene are implicated in regulating this plasticity.
Purpose of the Study:
- To investigate if ngr1 confines OD plasticity to the critical period by controlling disinhibition.
- To determine the role of ngr1 in PV interneurons during visual plasticity.
Main Methods:
- Mouse genetics
- Electrophysiology
- Circuit mapping with laser-scanning photostimulation
Main Results:
- Ngr1 mutant mice exhibit critical period-like plasticity in adulthood.
- Ngr1 in PV interneurons restricts the loss of excitatory synaptic input after MD in adult mice.
- Disinhibition, leading to a "lower PV network configuration," occurs in critical-period wild-type and adult ngr1 mutant mice.
Conclusions:
- Ngr1 limits disinhibition to close the critical period for OD plasticity.
- Decreased PV expression may indicate reduced recent activity in these interneurons.
More Related Videos
Related Concept Videos
Ligand-Gated Ion Channel Receptor: Gating Mechanism
Photoreceptors and Visual Pathways

