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Morphological differentiation of bipolar cells in the ferret retina
E D Miller1, M N Tran, G K Wong
1Department of Anatomy and Neurobiology, Washington University School of Medicine, St. Louis, MO 63110, USA.
Insights
Bipolar cells in the developing ferret retina show early stratification. These cells may guide the organization of neural connections in the inner retina.
Area of Science:
- Neuroscience
- Developmental Biology
- Retinal Cell Biology
Background:
- Bipolar cells are crucial for visual processing and retinal development.
- Their specific developmental timeline and role in inner plexiform layer (IPL) organization remain poorly understood.
Purpose of the Study:
- To investigate the differentiation and stratification patterns of bipolar cells in the neonatal ferret retina.
- To identify the temporal emergence of cone and rod bipolar cells and their axonal projections within the IPL.
Main Methods:
- Utilized immunocytochemical markers (calbindin, recoverin, protein kinase C) to identify specific bipolar cell types.
- Employed dye labeling to trace the stratification of bipolar cell axonal terminals in the inner plexiform layer (IPL).
Main Results:
- Calbindin-positive cone bipolar cells appeared at postnatal day 15 (P15) with terminals in the inner IPL.
- Recoverin-positive cells, potentially immature photoreceptors at birth, developed into cone bipolar cells by the second postnatal week, forming two distinct IPL strata.
- PKC-positive rod bipolar cells emerged by the fourth postnatal week with stratified arbors in the inner IPL.
- Dye-labeled bipolar cells demonstrated stratified axon terminals as early as P10, preceding synapse formation.
Conclusions:
- Bipolar cells exhibit early stratification biases within the IPL, suggesting a role in guiding dendritic lamination.
- These findings indicate that bipolar cells may provide crucial spatial cues for the development of retinal circuitry.
Abstract:
Bipolar cells are not only important for visual processing but input from these cells may underlie the reorganization of ganglion cell dendrites in the inner plexiform layer (IPL) during development. Because little is known about the development of bipolar cells, here we have used immunocytochemical markers and dye labeling to identify and follow their differentiation in the neonatal ferret retina. Putative cone bipolar cells were immunoreacted for calbindin and recoverin, and rod bipolar cells were immunostained for protein kinase C (PKC). Our results show that calbindin-immunoreactive cone bipolar cells appear at postnatal day 15 (P15), at which time their axonal terminals are already localized to the inner half of the IPL. By contrast, recoverin-immunoreactive cells with terminals in the IPL are present at birth, but many of these cells may be immature photoreceptors. By the second postnatal week, recoverin-positive cells resembling cone bipolar cells were clearly present, and with increasing age, two distinct strata of immunolabeled processes occupied the IPL. PKC-containing rod bipolar cells emerged by the fourth postnatal week and at this age have stratified arbors in the inner IPL. The early bias of bipolar axonal arbors in terminating in the inner or outer half of the IPL is confirmed by dye labeling of cells with somata in the inner nuclear layer. At P10, several days before ribbon synapses have been previously observed in the ferret IPL, the axon terminals of all dye-labeled bipolar cells were clearly stratified. The results suggest that bipolar cells could provide spatially localized interactions that are suitable for guiding dendritic lamination in the inner retina.
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