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.

Zebrafish
|February 14, 2017
PubMed

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.