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Imaging Ca2+ Dynamics in Cone Photoreceptor Axon Terminals of the Mouse Retina
Published on: May 6, 2015
Transcriptional profiling of murine retinas undergoing semi-synchronous cone photoreceptor differentiation
Michael L Kaufman1, Ko Uoon Park1, Noah B Goodson1
1Department of Ophthalmology, University of Colorado Anschutz Medical Campus, Aurora, CO, USA.
Abstract:
Uncovering the gene regulatory networks that control cone photoreceptor formation has been hindered because cones only make up a few percent of the retina and form asynchronously during development. To overcome these limitations, we used a γ-secretase inhibitor, DAPT, to disrupt Notch signaling and force proliferating retinal progenitor cells to rapidly adopt neuronal identity. We treated mouse retinal explants at the peak of cone genesis with DAPT and examined tissues at several time-points by histology and bulk RNA-sequencing. We found that this treatment caused supernumerary cone formation in an overwhelmingly synchronized fashion. This analysis revealed several categorical patterns of gene expression changes over time relative to DMSO treated control explants. These were placed in the temporal context of the activation of Otx2, a transcription factor that is expressed at the onset of photoreceptor development and that is required for both rod and cone formation. One group of interest had genes, such as Mybl1, Ascl1, Neurog2, and Olig2, that became upregulated by DAPT treatment before Otx2. Two other groups showed upregulated gene expression shortly after Otx2, either transiently or permanently. This included genes such as Mybl1, Meis2, and Podxl. Our data provide a developmental timeline of the gene expression events that underlie the initial steps of cone genesis and maturation. Applying this strategy to human retinal organoid cultures was also sufficient to induce a massive increase in cone genesis. Taken together, our results provide a temporal framework that can be used to elucidate the gene regulatory logic controlling cone photoreceptor development.
Insights
Disrupting Notch signaling with DAPT promotes rapid, synchronized cone photoreceptor formation. This study reveals a gene expression timeline critical for cone development in mice and human organoids.
Area of Science:
- Developmental Biology
- Neuroscience
- Genetics
Background:
- Cone photoreceptor development is challenging to study due to their low abundance and asynchronous formation.
- Notch signaling plays a role in regulating retinal progenitor cell fate and neuronal differentiation.
Purpose of the Study:
- To overcome limitations in studying cone genesis, we aimed to synchronize and enhance cone formation.
- To elucidate the gene regulatory networks and developmental timeline controlling cone photoreceptor development.
Main Methods:
- Mouse retinal explants were treated with a gamma-secretase inhibitor (DAPT) to disrupt Notch signaling.
- Histology and bulk RNA-sequencing were performed at multiple time points post-treatment.
- Gene expression patterns were analyzed in the temporal context of Otx2 activation.
Main Results:
- DAPT treatment induced supernumerary and synchronized cone photoreceptor formation in mouse retinas.
- Distinct temporal patterns of gene upregulation were identified, occurring before and after Otx2 activation.
- The DAPT strategy successfully increased cone genesis in human retinal organoid cultures.
Conclusions:
- Disrupting Notch signaling provides a powerful method to synchronize and amplify cone development.
- This study establishes a developmental gene expression timeline for early cone genesis and maturation.
- The findings offer a temporal framework for understanding cone photoreceptor development and its regulatory logic.
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