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Ex Vivo Oculomotor Slice Culture from Embryonic GFP-Expressing Mice for Time-Lapse Imaging of Oculomotor Nerve Outgrowth
Published on: July 16, 2019
Signaling - transcription interactions in mouse retinal ganglion cells early axon pathfinding -a literature review
Raluca Paşcalău1,2, Tudor Constantin Badea1,3
1Research and Development Institute, Transilvania University of Braşov, Braşov, Romania.
Abstract:
Sending an axon out of the eye and into the target brain nuclei is the defining feature of retinal ganglion cells (RGCs). The literature on RGC axon pathfinding is vast, but it focuses mostly on decision making events such as midline crossing at the optic chiasm or retinotopic mapping at the target nuclei. In comparison, the exit of RGC axons out of the eye is much less explored. The first checkpoint on the RGC axons' path is the optic cup - optic stalk junction (OC-OS). OC-OS development and the exit of the RGC pioneer axons out of the eye are coordinated spatially and temporally. By the time the optic nerve head domain is specified, the optic fissure margins are in contact and the fusion process is ongoing, the first RGCs are born in its proximity and send pioneer axons in the optic stalk. RGC differentiation continues in centrifugal waves. Later born RGC axons fasciculate with the more mature axons. Growth cones at the end of the axons respond to guidance cues to adopt a centripetal direction, maintain nerve fiber layer restriction and to leave the optic cup. Although there is extensive information on OC-OS development, we still have important unanswered questions regarding its contribution to the exit of the RGC axons out of the eye. We are still to distinguish the morphogens of the OC-OS from the axon guidance molecules which are expressed in the same place at the same time. The early RGC transcription programs responsible for axon emergence and pathfinding are also unknown. This review summarizes the molecular mechanisms for early RGC axon guidance by contextualizing mouse knock-out studies on OC-OS development with the recent transcriptomic studies on developing RGCs in an attempt to contribute to the understanding of human optic nerve developmental anomalies. The published data summarized here suggests that the developing optic nerve head provides a physical channel (the closing optic fissure) as well as molecular guidance cues for the pioneer RGC axons to exit the eye.
Insights
The optic nerve head guides retinal ganglion cell axons out of the eye. This review explores molecular mechanisms and developmental processes for axon guidance, aiding understanding of optic nerve anomalies.
Area of Science:
- Neuroscience
- Developmental Biology
- Ophthalmology
Background:
- Retinal ganglion cell (RGC) axon pathfinding is crucial for vision.
- Focus has been on optic chiasm and retinotopic mapping, neglecting eye exit.
- The optic cup-optic stalk (OC-OS) junction is the initial RGC axon checkpoint.
Purpose of the Study:
- To review molecular mechanisms of early RGC axon guidance out of the eye.
- To integrate OC-OS development with RGC transcriptomics.
- To understand human optic nerve developmental anomalies.
Main Methods:
- Literature review integrating mouse knockout studies on OC-OS development.
- Analysis of recent transcriptomic studies on developing RGCs.
- Contextualization of molecular guidance cues and morphogens.
Main Results:
- OC-OS development and RGC axon exit are spatially and temporally coordinated.
- The optic nerve head provides a physical channel (closing optic fissure) for axon exit.
- Molecular guidance cues and morphogens at the OC-OS are critical but not fully distinguished.
Conclusions:
- The developing optic nerve head facilitates RGC axon exit via physical and molecular guidance.
- Further research is needed to differentiate OC-OS morphogens from axon guidance molecules.
- Understanding these mechanisms is vital for human optic nerve developmental anomalies.
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