Differential Impact of Retinal Lesions on Visual Responses of LGN X and Y Cells
- PMID: 40300832
- PMCID: PMC12139585
- DOI: 10.1523/JNEUROSCI.0436-25.2025
Differential Impact of Retinal Lesions on Visual Responses of LGN X and Y Cells
Abstract
Damage to retinal cells from disease or injury causes vision loss and remodeling of downstream visual information processing circuits. As retinal cell replacement therapies and prosthetics become increasingly viable, we must understand the postretinal consequences of retinal cell loss to optimally recover visual perception. Here, we asked whether loss of retinal ganglion cells (RGCs) differentially impacts postsynaptic neurons in the visual thalamus-the dorsal lateral geniculate nucleus (LGN)-of ferrets, highly visual carnivores. We hypothesized that RGC loss might impact X more than Y LGN neurons, as there is less divergence in X retinogeniculate connections. We induced excitotoxic lesions of RGCs in a single eye and recorded neurophysiological responses of both contra- and ipsilesional LGN neurons to a variety of visual stimuli. We observed loss of responses among many LGN neurons, presumably with receptive fields within the scotoma. We also observed contralesional LGN neurons with receptive fields within or at the border of the scotoma that responded consistently to drifting sinusoidal gratings and spatiotemporally dynamic stimuli, enabling their classification as X or Y cells. Contralesional Y cell responses remained intact while contralesional X cells demonstrated higher firing rates, altered tuning to stimulus contrast and temporal frequency, and reduced spike timing precision. Consistent with neurophysiological results, alpha RGCs appeared relatively spared compared with beta RGCs. Together, our findings show that retinal cell loss differentially impacts downstream neuronal circuits, suggesting that supplemental vision recovery therapies may need to target visual circuits specialized for acuity vision.
Keywords: receptive field physiology; retinal ganglion cells.
Copyright © 2025 the authors.
Conflict of interest statement
The authors declare no competing financial interests.
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References
-
- Abrams L, Politi LE, Adler R (1989) Differential susceptibility of isolated mouse retinal neurons and photoreceptors to kainic acid toxicity. In vitro studies. Invest Ophthalmol Vis Sci 30:2300–2308. - PubMed
-
- Aumann S, Donner S, Fischer J, Muller F (2019) Optical coherence tomography (OCT): principle and technical realization. In: High resolution imaging in microscopy and ophthalmology (Bille JF, ed), pp 59–85. Cham: Springer. - PubMed
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