Investigation of the effects of estrogen on skeletal gene expression during zebrafish larval head development

Ehsan Pashay Ahi1, Benjamin S Walker2, Christopher S Lassiter2

  • 1Institute of Life and Environmental Sciences, University of Iceland , Reykjavik , Iceland.

Peerj
|April 13, 2016
PubMed

Insights

Estrogen signaling influences craniofacial development. Low concentrations of 17-β estradiol (E2) impact head morphology by altering gene expression related to skeletal development and extracellular matrix remodeling.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Genetics

Background:

  • Craniofacial skeletal development relies on precise molecular signaling.
  • Estrogen pathways, particularly 17-β estradiol (E2), are implicated in bone and cartilage formation.
  • Previous studies show high E2 causes defects, while low E2 induces subtle craniofacial changes.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying subtle craniofacial changes induced by low E2 concentrations.
  • To analyze gene expression profiles in zebrafish larvae exposed to different E2 levels.

Main Methods:

  • Quantitative real-time PCR was used to analyze gene expression in zebrafish larvae heads.
  • Three reference genes (ppia2, rpl8, tbp) were validated for accurate expression analysis.
  • Expression of 28 skeletogenesis-associated genes was profiled after treatment with two E2 concentrations.

Main Results:

  • Low E2 concentrations differentially regulated genes involved in extracellular matrix (ECM) remodeling (mmp2/9/13, sparc, timp2a).
  • Skeletogenic pathway genes (bmp2a, erf, ptch1/2, rankl, rarab, sfrp1a) also showed altered expression.
  • A co-expressed gene network (cpn1, dnajc3, esr1, lman1, rrbp1a, ssr1, tram1) exhibited a stronger response to lower E2 doses.

Conclusions:

  • Low-dose estrogen signaling significantly impacts craniofacial development at the molecular level.
  • Estrogen-mediated regulation of ECM remodeling and skeletogenic pathways is crucial for subtle morphological changes.
  • Identified gene networks provide insights into the molecular basis of E2-induced craniofacial alterations.

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