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July 12, 2026Nature Communications0 citationsOpen Access

Resting-state electroretinography reveals pathological retinal oscillations in retinitis pigmentosa mice and patients

DLDavid LitvinABAlexia BoizotACAndrea Corna

Key Points

  • The study aims to investigate functional alterations in retinal circuits involved in retinitis pigmentosa and evaluate their implications for treatment.
  • Non-invasive corneal neurotechnology was employed to measure in-vivo resting-state electroretinography.
  • Frequency content and temporal characteristics of the activity were analyzed in both mouse models and patients.
  • Pharmacological modulation of oscillatory activity was assessed to understand its impact on retinal excitability.
  • Retinal remodeling in retinitis pigmentosa mice showed increased bursting oscillatory activity (P<0.01).
  • The same oscillatory activity was identified in patients, indicating functional changes.
  • Reducing this oscillatory activity increased retinal excitability to electrical stimulation, highlighting a potential therapeutic target.

Abstract

Abstract Retinal remodeling occurs in both retinitis pigmentosa and age-related macular degeneration. However, it is still unknown whether spared retinal circuits are also functionally altered. Functional changes have been observed in animal models of retinitis pigmentosa, including the emergence of bursting oscillatory activity in retinal ganglion cells. Yet, comparable oscillatory activity, or other functional alterations, has not been demonstrated in patients. To address this gap, here we report a non-invasive corneal neurotechnology measuring in-vivo resting-state electroretinography and analyzing its frequency content and temporal characteristics to identify biomarkers of functional remodeling. We document that retinal remodeling induces bursting oscillatory activity in-vivo in retinitis pigmentosa mouse models and translate these results to patients. Moreover, we showed in mice that bursting oscillatory activity can be pharmacologically modulated in-vivo. Furthermore, reducing this oscillatory activity increases retinal excitability to electrical stimulation. These results are crucial for a better understanding of retinal degeneration and contribute to sight restoration efforts.

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Cite This Study

Litvin et al. (2026) studied this question.

synapsesocial.com/papers/6a532f464f7abc118adece97https://doi.org/10.1038/s41467-026-75520-9
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