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Published on: December 22, 2014
Chemically induced cone degeneration in the 13-lined ground squirrel
Hannah M Follett1, Emma Warr2, Jenna Grieshop2,3
1Department of Cell Biology, Neurobiology, & Anatomy, Medical College of Wisconsin, Milwaukee, Wisconsin, USA.
Abstract:
Animal models of retinal degeneration are critical for understanding disease and testing potential therapies. Inducing degeneration commonly involves the administration of chemicals that kill photoreceptors by disrupting metabolic pathways, signaling pathways, or protein synthesis. While chemically induced degeneration has been demonstrated in a variety of animals (mice, rats, rabbits, felines, 13-lined ground squirrels (13-LGS), pigs, chicks), few studies have used noninvasive high-resolution retinal imaging to monitor the in vivo cellular effects. Here, we used longitudinal scanning light ophthalmoscopy (SLO), optical coherence tomography, and adaptive optics SLO imaging in the euthermic, cone-dominant 13-LGS (46 animals, 52 eyes) to examine retinal structure following intravitreal injections of chemicals, which were previously shown to induce photoreceptor degeneration, throughout the active season of 2019 and 2020. We found that iodoacetic acid induced severe pan-retinal damage in all but one eye, which received the lowest concentration. While sodium nitroprusside successfully induced degeneration of the outer retinal layers, the results were variable, and damage was also observed in 50% of contralateral control eyes. Adenosine triphosphate and tunicamycin induced outer retinal specific damage with varying results, while eyes injected with thapsigargin did not show signs of degeneration. Given the variability of damage we observed, follow-up studies examining the possible physiological origins of this variability are critical. These additional studies should further advance the utility of chemically induced photoreceptor degeneration models in the cone-dominant 13-LGS.
Insights
Chemically induced photoreceptor degeneration in 13-lined ground squirrels (13-LGS) showed variable results. Iodoacetic acid caused severe damage, while other chemicals induced inconsistent or no degeneration, highlighting the need for further research.
Area of Science:
- Ophthalmology
- Neuroscience
- Animal Models
Background:
- Animal models are crucial for studying retinal degeneration and testing therapies.
- Chemically induced photoreceptor damage is a common method, but in vivo monitoring is less explored.
- 13-lined ground squirrels (13-LGS) offer a cone-dominant model for retinal research.
Purpose of the Study:
- To evaluate the efficacy of different chemicals in inducing photoreceptor degeneration in 13-LGS.
- To monitor the in vivo cellular effects using advanced retinal imaging techniques.
- To assess the variability and reliability of these models for future research.
Main Methods:
- Longitudinal scanning light ophthalmoscopy (SLO), optical coherence tomography, and adaptive optics SLO imaging were employed.
- 46 13-LGS (52 eyes) received intravitreal injections of various chemicals.
- Retinal structure was examined following injections during the 2019-2020 active seasons.
Main Results:
- Iodoacetic acid induced severe pan-retinal damage, except at the lowest concentration.
- Sodium nitroprusside caused variable outer retinal damage and affected control eyes.
- Adenosine triphosphate and tunicamycin showed outer retinal specific damage; thapsigargin induced no degeneration.
Conclusions:
- Chemically induced photoreceptor degeneration models in 13-LGS exhibit significant variability.
- Further studies are needed to understand the physiological basis for this variability.
- Optimizing these models is critical for advancing retinal degeneration research.
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