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Published on: June 15, 2017
Activated Ras alters lens and corneal development through induction of distinct downstream targets
Daniel Burgess1, Yan Zhang, Ed Siefker
1Department of Surgery, 2500 California Plaza, Creighton University, Omaha, NE 68178, USA.
Background:
Mammalian Ras genes regulate diverse cellular processes including proliferation and differentiation and are frequently mutated in human cancers. Tumor development in response to Ras activation varies between different tissues and the molecular basis for these variations are poorly understood. The murine lens and cornea have a common embryonic origin and arise from adjacent regions of the surface ectoderm. Activation of the fibroblast growth factor (FGF) signaling pathway induces the corneal epithelial cells to proliferate and the lens epithelial cells to exit the cell cycle. The molecular mechanisms that regulate the differential responses of these two related tissues have not been defined. We have generated transgenic mice that express a constitutively active version of human H-Ras in their lenses and corneas.
Results:
Ras transgenic lenses and corneal epithelial cells showed increased proliferation with concomitant increases in cyclin D1 and D2 expression. This initial increase in proliferation is sustained in the cornea but not in the lens epithelial cells. Coincidentally, cdk inhibitors p27Kip1 and p57Kip2 were upregulated in the Ras transgenic lenses but not in the corneas. Phospho-Erk1 and Erk2 levels were elevated in the lens but not in the cornea and Spry 1 and Spry 2, negative regulators of Ras-Raf-Erk signaling, were upregulated more in the corneal than in the lens epithelial cells. Both lens and corneal differentiation programs were sensitive to Ras activation. Ras transgenic embryos showed a distinctive alteration in the architecture of the lens pit. Ras activation, though sufficient for upregulation of Prox1, a transcription factor critical for cell cycle exit and initiation of fiber differentiation, is not sufficient for induction of terminal fiber differentiation. Expression of Keratin 12, a marker of corneal epithelial differentiation, was reduced in the Ras transgenic corneas.
Conclusions:
Collectively, these results suggest that Ras activation a) induces distinct sets of downstream targets in the lens and cornea resulting in distinct cellular responses and b) is sufficient for initiation but not completion of lens fiber differentiation.
Insights
Ras activation in mouse lenses and corneas leads to distinct cellular responses and differential gene expression. While Ras initiates lens fiber differentiation, it does not complete it, impacting tissue development.
Area of Science:
- Developmental Biology
- Cancer Biology
- Molecular Genetics
Background:
- Mammalian Ras genes are crucial for cell proliferation and differentiation, with mutations frequently observed in human cancers.
- Understanding tissue-specific responses to Ras activation is vital, as tumor development varies.
- The lens and cornea, sharing embryonic origins, exhibit differential responses to Fibroblast Growth Factor (FGF) signaling.
Purpose of the Study:
- To investigate the molecular mechanisms underlying differential cellular responses in the lens and cornea upon Ras activation.
- To generate transgenic mice expressing a constitutively active human H-Ras in these ocular tissues.
Main Methods:
- Generation of transgenic mice expressing constitutively active human H-Ras in the lens and cornea.
- Analysis of cell proliferation markers (cyclins D1/D2) and cell cycle inhibitors (p27Kip1, p57Kip2).
- Assessment of signaling pathway activation (Erk1/Erk2) and negative regulators (Spry 1/Spry 2).
- Evaluation of differentiation markers (Prox1, Keratin 12) in lens and corneal tissues.
Main Results:
- Ras activation increased proliferation and cyclin expression in both lens and corneal cells, sustained in the cornea but transient in the lens.
- Upregulation of CDK inhibitors (p27Kip1, p57Kip2) occurred in the lens but not the cornea.
- Differential activation of Erk1/Erk2 and Spry 1/Spry 2 was observed between the lens and cornea.
- Ras activation initiated lens fiber differentiation (Prox1 upregulation) but did not induce terminal differentiation, and reduced corneal differentiation marker (Keratin 12).
Conclusions:
- Ras activation triggers distinct downstream targets and cellular responses in the lens and cornea.
- Ras activation is sufficient to initiate, but not complete, lens fiber differentiation.
- These findings highlight the complex, tissue-specific roles of Ras signaling in ocular development and cancer.
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