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Author Spotlight: Efficient Isolation of Primary Retinal Pigment Epithelial Cells from Adult Mice for Retinopathy Research
Published on: May 24, 2024
Yap is essential for retinal progenitor cell cycle progression and RPE cell fate acquisition in the developing mouse
Jin Young Kim1, Raehee Park1, Jin Hwan J Lee1
1Shriners Hospitals Pediatric Research Center (Center for Neural Repair and Rehabilitation) and Department of Anatomy and Cell Biology, Lewis Katz School of Medicine, Temple University, Philadelphia, PA 19140, United States.
Abstract:
Yap functions as a transcriptional regulator by acting together with sequence-specific DNA binding factors and transcription cofactors to mediate cell proliferation in developing epithelial tissues and tumors. An upstream kinase cascade controls nuclear localization and function in response to partially identified exogenous signals, including cell-to-cell contact. Nevertheless, its role in CNS development is poorly understood. In order to investigate Yap function in developing CNS, we characterized the cellular outcomes after selective Yap gene ablation in developing ocular tissues. When Yap was lost, presumptive retinal pigment epithelium acquired anatomical and molecular characteristics resembling those of the retinal epithelium rather than of RPE, including loss of pigmentation, pseudostratified epithelial morphology and ectopic induction of markers for retinal progenitor cells, like Chx10, and neurons, like β-Tubulin III. In addition, developing retina showed signs of progressive degeneration, including laminar folding, thinning and cell loss, which resulted from multiple defects in cell proliferation and survival, and in junction integrity. Furthermore, Yap-deficient retinal progenitors displayed decreased S-phase cells and altered cell cycle progression. Altogether, our studies not only illustrate the canonical function of Yap in promoting the proliferation of progenitors, but also shed new light on its evolutionarily conserved, instructive role in regional specification, maintenance of junctional integrity and precise regulation of cell proliferation during neuroepithelial development.
Insights
The Yap gene is crucial for cell proliferation and tissue development. Its loss in ocular tissues disrupts retinal development, causing degeneration and altered cell characteristics.
Area of Science:
- Developmental Biology
- Molecular Biology
- Neuroscience
Background:
- The transcriptional regulator Yap is known to mediate cell proliferation in epithelial tissues.
- Its specific role in the development of the central nervous system (CNS) remains largely uncharacterized.
Purpose of the Study:
- To investigate the function of Yap in the developing CNS.
- To characterize the cellular consequences of Yap gene ablation in ocular tissues.
Main Methods:
- Selective Yap gene ablation in developing ocular tissues.
- Analysis of anatomical and molecular characteristics of affected tissues.
- Assessment of cell proliferation, survival, and junction integrity.
Main Results:
- Yap loss in presumptive retinal pigment epithelium (RPE) led to RPE-like characteristics, including loss of pigmentation and altered morphology.
- Ectopic expression of retinal progenitor and neuronal markers (Chx10, β-Tubulin III) was observed.
- Progressive retinal degeneration, including thinning, folding, and cell loss, resulted from defects in proliferation, survival, and junction integrity.
- Yap-deficient retinal progenitors showed reduced S-phase cells and cell cycle alterations.
Conclusions:
- Yap plays a canonical role in promoting progenitor cell proliferation.
- Yap has an evolutionarily conserved, instructive role in regional specification and maintaining junctional integrity during neuroepithelial development.
- Yap precisely regulates cell proliferation in neuroepithelial development.
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