bioRxiv Science⌕ Search

Biology subjects

Reilly-Andujar, F.

Publications and source records attributed to Reilly-Andujar, F..

2 recordsLinked to original sources

Tuning metaplasticity in the adult visual cortex using flickering light

Synaptic connections in the brain are refined by sensory experience during an early postnatal critical period, but by adulthood synaptic connectivity is resistant to further changes. A consequence of lost plasticity is limited recovery from brain injury, disease, and adverse sensory experience. Thus, there is great interest in treatments that can promote synaptic modifications in the adult brain. In a wide variety of contexts, it has been established that the qualities of synaptic plasticity are not fixed but rather vary depending on the recent history of cellular or synaptic activity1. This plasticity of plasticity, or metaplasticity2 explains why temporary manipulations of brain activity (e.g., by drugs3, transcranial stimulation4, or sensory deprivation5) can set the stage for subsequent, potentially therapeutic, long-lasting synaptic modifications6. Here we tested the hypothesis that plasticity in the adult mouse visual cortex is influenced by prior exposure to temporally modulated light and discovered that different flicker frequencies have qualitatively different effects. Exposure to 60 Hz stimulation increased microglia density, depleted perineuronal nets (PNNs), and restored ocular dominance plasticity in response to brief monocular deprivation (MD). Exposure to 40 Hz flicker also enabled ocular dominance plasticity, but it did so in a distinct way and without PNN remodeling. A key distinction is that unlike 60 Hz flicker, which enabled depression of synaptic strength by MD, 40 Hz flicker promoted synaptic strengthening. Indeed, we found that 40 Hz flicker primed a rapid and robust recovery from the effects of long-term MD that failed to occur after 60 Hz flicker. Thus, metaplasticity can be non-invasively "tuned" by light flickering at different frequencies to encourage different forms of synaptic plasticity in the cerebral cortex, including modifications that enable recovery of function.

neuroscience↗

Using the visual cliff assay to assess binocular deficits in amblyopic mice

Amblyopia, a neurodevelopmental visual disorder characterized by impaired stereoacuity, is commonly modeled in animals using monocular deprivation (MD) during a critical period of visual development. Despite extensive research at the synaptic, cellular and circuit levels of analysis, reliable behavioral assays to study stereoscopic deficits in mice are limited. This study aimed to characterize the Visual Cliff Assay (VCA) and the Pole Descent Cliff Task (PDCT) in mice, and to evaluate their utility in detecting binocular dysfunction. Using these assays, we investigated the impact of clinically relevant manipulations of binocular vision, including monocular occlusion, pupillary dilation, and amblyopia induced by long-term MD. Our findings reveal that optimal performance in both the VCA and PDCT are dependent on balanced binocular input. However, deficits after MD in the VCA exhibited relatively small effect sizes (7-14%), requiring large sample sizes for statistical comparisons. In contrast, the PDCT demonstrated larger effect sizes (43-61%), allowing for reliable detection of binocular dysfunction with a smaller sample size. Both assays were validated using multiple monocular manipulations relevant to clinical paradigms, with the PDCT emerging as the preferred assay for detecting deficits in stereoscopic depth perception in mice. These findings provide a robust framework for using the VCA and PDCT in mechanistic and therapeutic studies in mice, offering insights into the neural mechanisms of binocular vision and potential interventions for amblyopia

neuroscience↗