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Published on: January 12, 2015
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.
Abstract:
SPARC is a matricellular Ca(2+)-binding glycoprotein that exhibits both counteradhesive and antiproliferative effects on cultured cells. It is secreted by cells of various tissues as a consequence of morphogenesis, response to injury, and cyclic renewal and/or repair. In an earlier study with Xenopus embryos we had shown a highly specific and regulated pattern of SPARC expression. We now show that ectopic expression of SPARC before its normal embryonic activation produces severe anomalies, some of which are consistent with the functions of SPARC proposed from studies in vitro. Microinjection of SPARC RNA, protein, and peptides into Xenopus embryos before endogenous embryonic expression generated different but overlapping phenotypes. (a) Injection of SPARC RNA into one cell of a two-cell embryo resulted in a range of unilateral defects. (b) Precocious exposure of embryos to SPARC by microinjection of protein into the blastocoel cavity was associated with certain axial defects comparable to those obtained with SPARC RNA. (c) SPARC peptides containing follistatin-like and copper-binding sequences were without obvious effect, whereas SPARC peptide 4.2, corresponding to a disulfide-bonded, Ca(2+)-binding domain, was associated with a reduction in axial structures that led eventually to complete ventralization of the embryos. Histological analysis of ventralized embryos indicated that the morphogenetic events associated with gastrulation might have been inhibited. Microinjection of other Ca(2+)-binding glycoproteins, such as osteopontin and bone sialoprotein, resulted in phenotypes that were unique. We probed further the structural correlates of this region of SPARC in the context of tissue development. Co-injection of peptide 4.2 with Ca2+ or EGTA, and injection of peptide 4.2K (containing a mutated consensus Ca(2+)-binding sequence), demonstrated that the developmental defects associated with peptide 4.2 were independent of Ca2+. However, the disulfide bridge in this region of SPARC was found to be critical, as injection of peptide 4.2AA, a mutant lacking the cystine, generated no axial defects. We have therefore shown for the first time in vivo that the temporally inappropriate presence of SPARC is associated with perturbations in tissue morphogenesis. Moreover, we have identified at least one bioactive region of SPARC as the C-terminal disulfide-bonded, Ca(2+)-binding loop that was previously shown to be both counteradhesive and growth-inhibitory.
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.

