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Coordinate accumulation of five transcripts in the primary mesenchyme during skeletogenesis in the sea urchin embryo

M A Harkey1, H R Whiteley, A H Whiteley

  • 1Department of Microbiology, University of Washington, Seattle 98195.

Developmental Biology
|February 1, 1988
PubMed

Insights

Sea urchin larval skeleton development involves specific genes. Five distinct genes, encoding PM-enriched mRNA, are coordinately expressed during skeleton formation, regulated by RNA abundance.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Marine Biology

Background:

  • The sea urchin larval skeleton is formed by primary mesenchyme (PM) cells.
  • PM cells originate from micromeres in early embryonic development.
  • Understanding PM cell gene expression is key to larval skeleton formation.

Purpose of the Study:

  • To identify and characterize genes specifically expressed in sea urchin PM cells.
  • To investigate the regulation of gene expression during PM cell differentiation and skeleton formation.
  • To understand the coordination of gene expression in skeletogenesis.

Main Methods:

  • cDNA library construction from differentiated micromere cultures.
  • Differential screening of cDNA clones based on RNA enrichment in PM cells.
  • In situ hybridization to determine RNA localization within embryos.
  • Analysis of RNA accumulation patterns during PM development.

Main Results:

  • Five distinct cDNA clones representing PM-enriched or PM-specific mRNAs were isolated.
  • These mRNAs are encoded by single or low copy genes and are absent in other embryonic cell types.
  • One specific RNA (SpLM 18) was localized to skeletogenic PM cells.
  • All five identified RNAs accumulated coordinately with PM development, preceding PM ingression.

Conclusions:

  • At least five distinct genes are tightly coordinated during sea urchin larval skeleton development.
  • Gene expression in PM cells is primarily regulated at the level of mRNA abundance.
  • These findings provide insights into the molecular mechanisms of skeletogenesis in echinoderms.

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