Vascular Endothelial Growth Factor A and Leptin Expression Associated with Ectopic Proliferation and Retinal
Laura E Schultz1, Staci L Solin1, Wesley A Wierson1
11 Department of Genetics, Development and Cell Biology, Iowa State University , Ames, Iowa.
Abstract:
In the central nervous system injury induces cellular reprogramming and progenitor proliferation, but the molecular mechanisms that limit regeneration and prevent tumorigenesis are not completely understood. We previously described a zebrafish optic pathway tumor model in which transgenic Tg(flk1:RFP)is18/+ adults develop nonmalignant retinal tumors. Key pathways driving injury-induced glial reprogramming and regeneration contributed to tumor formation. In this study, we examine a time course of proliferation and present new analyses of the Tg(flk1:RFP)is18/+ dysplastic retina and tumor transcriptomes. Retinal dysplasia was first detected in 3-month-old adults, but was not limited to a specific stem cell or progenitor niche. Pathway analyses suggested a decrease in cellular respiration and increased expression of components of Hif1-α, VEGF, mTOR, NFκβ, and multiple interleukin pathways are associated with early retinal dysplasia. Hif-α targets VEGFA (vegfab) and Leptin (lepb) were both highly upregulated in dysplastic retina; however, each showed distinct expression patterns in neurons and glia, respectively. Phospho-S6 immunolabeling indicated that mTOR signaling is activated in multiple cell populations in wild-type retina and in the dysplastic retina and advanced tumor. Our results suggest that multiple pathways may contribute to the continuous proliferation of retinal progenitors and tumor growth in this optic pathway tumor model. Further investigation of these signaling pathways may yield insight into potential mechanisms to control the proliferative response during regeneration in the nervous system.
Insights
Central nervous system injury triggers cell reprogramming, but regeneration limits and tumor prevention are unclear. This study reveals pathways like Hif1-α and mTOR drive retinal dysplasia and tumor growth in zebrafish.
Area of Science:
- Neuroscience
- Developmental Biology
- Cancer Biology
Background:
- Central nervous system (CNS) injury can induce cellular reprogramming and progenitor proliferation.
- Molecular mechanisms limiting CNS regeneration and preventing tumorigenesis remain poorly understood.
- A zebrafish optic pathway tumor model exhibits nonmalignant retinal tumors in transgenic adults.
Purpose of the Study:
- To investigate the time course of proliferation in a zebrafish optic pathway tumor model.
- To analyze transcriptomes of dysplastic retina and tumors in Tg(flk1:RFP)is18/+ zebrafish.
- To identify molecular pathways associated with retinal dysplasia and tumor formation.
Main Methods:
- Time-course analysis of proliferation.
- Transcriptome analysis of dysplastic retina and tumors.
- Pathway analysis (Hif1-α, VEGF, mTOR, NFκβ, Interleukin pathways).
- Immunolabeling for Phospho-S6 (mTOR signaling).
Main Results:
- Retinal dysplasia was detected in 3-month-old adults, not confined to specific progenitor niches.
- Early retinal dysplasia showed decreased cellular respiration and increased Hif1-α, VEGF, mTOR, NFκβ, and Interleukin pathway components.
- VEGFA and Leptin were upregulated in dysplastic retina with distinct neuronal and glial expression.
- mTOR signaling was activated in wild-type, dysplastic, and tumor tissues.
Conclusions:
- Multiple signaling pathways, including Hif1-α, VEGF, and mTOR, contribute to continuous retinal progenitor proliferation and tumor growth.
- Distinct expression patterns of Hif-α targets suggest complex regulation.
- Understanding these pathways may offer insights into controlling proliferative responses during neural regeneration.
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