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Unlabelled: Retinal waves are correlated bursts of spontaneous activity whose spatiotemporal patterns are critical for early activity-dependent circuit elaboration and refinement in the mammalian visual system. Three separate developmental wave epochs or stages have been described, but the mechanism(s) of pattern generation of each and their distinct roles in visual circuit development remain incompletely understood. We used neuroanatomical,in vitroandin vivoelectrophysiological, and optical imaging techniques in genetically manipulated mice to examine the mechanisms of wave initiation and propagation and the role of wave patterns in visual circuit development. Through deletion of β2 subunits of nicotinic acetylcholine receptors (β2-nAChRs) selectively from starburst amacrine cells (SACs), we show that mutual excitation among SACs is critical for Stage II (cholinergic) retinal wave propagation, supporting models of wave initiation and pattern generation from within a single retinal cell type. We also demonstrate that β2-nAChRs in SACs, and normal wave patterns, are necessary for eye-specific segregation. Finally, we show that Stage III (glutamatergic) retinal waves are not themselves necessary for normal eye-specific segregation, but elimination of both Stage II and Stage III retinal waves dramatically disrupts eye-specific segregation. This suggests that persistent Stage II retinal waves can adequately compensate for Stage III retinal wave loss during the development and refinement of eye-specific segregation. These experiments confirm key features of the "recurrent network" model for retinal wave propagation and clarify the roles of Stage II and Stage III retinal wave patterns in visual circuit development.
Significance Statement: Spontaneous activity drives early mammalian circuit development, but the initiation and patterning of activity vary across development and among modalities. Cholinergic "retinal waves" are initiated in starburst amacrine cells and propagate to retinal ganglion cells and higher-order visual areas, but the mechanism responsible for creating their unique and critical activity pattern is incompletely understood. We demonstrate that cholinergic wave patterns are dictated by recurrent connectivity within starburst amacrine cells, and retinal ganglion cells act as "readouts" of patterned activity. We also show that eye-specific segregation occurs normally without glutamatergic waves, but elimination of both cholinergic and glutamatergic waves completely disrupts visual circuit development. These results suggest that each retinal wave pattern during development is optimized for concurrently refining multiple visual circuits.
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http://dx.doi.org/10.1523/JNEUROSCI.3549-15.2016 | DOI Listing |
Invest Ophthalmol Vis Sci
September 2025
Department of Ophthalmology, Edward S. Harkness Eye Institute, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, Columbia University, New York, New York, United States.
Purpose: To characterize a no b-wave (nob) mouse model of congenital stationary night blindness (CSNB) caused by a Grm6 variant that disrupts photoreceptor-to-bipolar cell signaling. Additionally, we aim to evaluate the efficacy of gene therapy in restoring visual function.
Methods: The nob mouse was generated through selective breeding to regenerate the nob phenotype.
Invest Ophthalmol Vis Sci
September 2025
Section of Protein Structure and Function, Laboratory of Retinal Cell and Molecular Biology, National Eye Institute, Bethesda, Maryland, United States.
Purpose: Lipid accumulation in the retinal pigment epithelium (RPE) contributes to cellular stress and progression of age-related macular degeneration (AMD). However, the regulation of lipid homeostasis in AMD development is not fully elucidated. The study investigates the effects of Pnpla2 deletion, a gene involved in lipid regulation, on key markers of RPE senescence and aging with potential relevance to AMD.
View Article and Find Full Text PDFExp Eye Res
August 2025
Department of Anesthesiology, Shanxi Provincial People's Hospital, Taiyuan, 030012, Shanxi, China. Electronic address:
The aim of this study is to evaluate the effects of varying endocryocoagulation parameters on retinal function and histological integrity in a rabbit model and to assess the feasibility of intraocular foreign body (IOFB) removal using a 20G cryoprobe. Twenty-seven adult New Zealand white rabbits were randomly assigned to three experimental groups (n = 9 per group). Endocryocoagulation was administered with a 20G cryoprobe under different conditions: Group An underwent vitreous cavity freezing for 5 s; Group B underwent retinal surface freezing for 5 s; and Group C underwent vitreous cavity freezing for 10 s.
View Article and Find Full Text PDFSci Rep
August 2025
Department of Ophthalmology, Wilmer Eye Institute, Johns Hopkins University, Baltimore, MD, 21287, USA.
Electroretinography (ERG) is pivotal in elucidating retinal function, yet investigations into the temporal dynamics of ERG signals in New Zealand White (NZW) and Dutch-belted (DB) rabbits remain scarce. This study presents a longitudinal assessment of retinal function in both NZW and DB strains. ERG recordings were conducted on four NZW and four DB rabbits at 2, 7, 15, and 24 months of age, encompassing both dark-adapted and light-adapted protocols at each time point.
View Article and Find Full Text PDFExp Eye Res
August 2025
Chemistry and Physics of Materials Unit (CPMU), JNCASR, Bangalore, India; Neuroscience Unit (NSU), JNCASR, Bangalore, India. Electronic address:
Retinal waves are spreading, correlated spontaneous bursts of activity, that can be used to track different stages of the developing retina. We used multi-electrode recordings to record from early (E8) to late developmental stages (P0) in the chick retina, allowing us to parametrize the retinal wave activity using burst and wave detection methods. For instance, during the early stages, the waves observed cover a sizable fraction of the recording area.
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