Ectopic expression of SPARC in Xenopus embryos interferes with tissue morphogenesis: identification of a bioactive

S Damjanovski1, X Karp, S Funk

  • 1Department of Zoology, University of Toronto, Ontario, Canada.

Insights

Disrupting the normal timing of SPARC (secreted protein acidic and rich in cysteine) expression in Xenopus embryos caused severe developmental anomalies. A specific bioactive region, the C-terminal disulfide-bonded loop, was identified as critical for these SPARC-induced perturbations in tissue morphogenesis.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Biochemistry

Background:

  • SPARC (secreted protein acidic and rich in cysteine) is a matricellular glycoprotein involved in cell adhesion and proliferation.
  • SPARC plays roles in tissue morphogenesis, injury response, and repair.
  • Previous in vitro studies suggested SPARC's functions, but its in vivo role during embryonic development was less understood.

Purpose of the Study:

  • To investigate the in vivo effects of SPARC on embryonic development in Xenopus.
  • To identify specific regions of SPARC responsible for developmental perturbations.
  • To elucidate the structural requirements for SPARC's bioactivity during embryogenesis.

Main Methods:

  • Microinjection of SPARC RNA, protein, and various peptides into Xenopus embryos at different developmental stages.
  • Histological analysis of resulting embryonic abnormalities.
  • Assessment of the role of calcium and disulfide bonds in SPARC's activity through mutant peptide injections.

Main Results:

  • Ectopic expression of SPARC before normal embryonic activation led to significant developmental anomalies, including unilateral defects and axial abnormalities.
  • A specific SPARC peptide (peptide 4.2), corresponding to a disulfide-bonded, Ca(2+)-binding domain, induced ventralization and inhibited gastrulation.
  • The developmental defects induced by peptide 4.2 were independent of Ca(2+) but critically dependent on the disulfide bridge within the peptide.

Conclusions:

  • Temporally inappropriate presence of SPARC in vivo disrupts normal tissue morphogenesis.
  • The C-terminal disulfide-bonded loop of SPARC is a key bioactive region responsible for developmental perturbations.
  • This study provides the first in vivo evidence linking SPARC's structure to its role in regulating embryonic development.

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