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Cone-Enriched Cultures from the Retina of Chicken Embryos to Study Rod to Cone Cellular Interactions
Published on: March 20, 2021
Genetic dissection reveals two separate pathways for rod and cone regeneration in the teleost retina
Ann C Morris1, Tamera L Scholz, Susan E Brockerhoff
1Department of Biological Science, Florida State University, Tallahassee, Florida 32306, USA. amorris@bio.fsu.edu
Abstract:
Development of therapies to treat visual system dystrophies resulting from the degeneration of rod and cone photoreceptors may directly benefit from studies of animal models, such as the zebrafish, that display continuous retinal neurogenesis and the capacity for injury-induced regeneration. Previous studies of retinal regeneration in fish have been conducted on adult animals and have relied on methods that cause acute damage to both rods and cones, as well as other retinal cell types. We report here the use of a genetic approach to study progenitor cell responses to photoreceptor degeneration in the larval and adult zebrafish retina. We have compared the responses to selective rod or cone degeneration using, respectively, the XOPS-mCFP transgenic line and zebrafish with a null mutation in the pde6c gene. Notably, rod degeneration induces increased proliferation of progenitors in the outer nuclear layer (ONL) and is not associated with proliferation or reactive gliosis in the inner nuclear layer (INL). Molecular characterization of the rod progenitor cells demonstrated that they are committed to the rod photoreceptor fate while they are still mitotic. In contrast, cone degeneration induces both Müller cell proliferation and reactive gliosis, with little change in proliferation in the ONL. We found that in both lines, proliferative responses to photoreceptor degeneration can be observed as 7 days post fertilization (dpf). These two genetic models therefore offer new opportunities for investigating the molecular mechanisms of selective degeneration and regeneration of rods and cones.
Insights
Zebrafish models reveal distinct progenitor cell responses to rod versus cone degeneration. Rod degeneration stimulates outer nuclear layer progenitor proliferation, while cone degeneration triggers Müller cell responses in the retina.
Area of Science:
- Retinal biology
- Developmental neuroscience
- Vision science
Background:
- Visual system dystrophies arise from photoreceptor degeneration.
- Zebrafish are valuable models for retinal regeneration due to continuous neurogenesis.
- Previous studies used methods causing broad retinal damage.
Purpose of the Study:
- To investigate progenitor cell responses to selective rod or cone degeneration in zebrafish.
- To compare these responses in larval and adult zebrafish retinas.
- To establish genetic models for studying photoreceptor degeneration and regeneration.
Main Methods:
- Utilized a genetic approach in zebrafish.
- Compared XOPS-mCFP transgenic line (rod degeneration) and pde6c null mutant (cone degeneration).
- Analyzed progenitor cell proliferation and reactive gliosis at 7 days post fertilization (dpf).
Main Results:
- Rod degeneration induced progenitor proliferation in the outer nuclear layer (ONL) without inner nuclear layer (INL) gliosis.
- Cone degeneration triggered Müller cell proliferation and reactive gliosis in the INL, with minimal ONL proliferation.
- Progenitor cell responses were observed as early as 7 dpf in both models.
Conclusions:
- Zebrafish models allow for selective study of rod and cone degeneration.
- Rod and cone degeneration elicit distinct retinal progenitor cell responses.
- These models provide new avenues for understanding the molecular basis of retinal degeneration and regeneration.
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