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Updated: Jul 9, 2026

A Novel Stromal Fibroblast-Modulated 3D Tumor Spheroid Model for Studying Tumor-Stroma Interaction and Drug Discovery
Published on: February 28, 2020
SPARC modulates the proliferation of stromal but not melanoma cells unless endogenous SPARC expression is
Cynthia López Haber1, Vanesa Gottifredi, Andrea S Llera
1Laboratory of Molecular and Cellular Therapy, Fundación Instituto Leloir-CONICET, Universidad de Buenos Aires, Buenos Aires, Argentina.
Abstract:
Cell interaction with the extracellular matrix (ECM) has profound influence in cancer progression. The secreted protein, acidic and rich in cysteine (SPARC) a component of the ECM, impairs the proliferation of different cell types and modulates tumor cell aggressive features. This apparent paradox might result either from the biochemical properties of the different SPARC sources or from differential responses of malignant and stromal cells to SPARC. To test these hypotheses, we purified SPARC secreted by melanoma cells (hMel-SPARC) and compared its activity with different recombinant SPARC preparations, including a new one produced in insect cells. All 5 SPARC species were effective in inhibiting bovine aortic endothelial cell proliferation, adhesion and migration. We then used the melanoma-derived protein to assess SPARC effect on additional cell types. hMel-SPARC greatly impaired the proliferation of both normal and transformed human endothelial cells and exerted a moderate biphasic effect on human fetal fibroblasts proliferation, irrespective of their endogenous SPARC levels. However, SPARC had no effect on the proliferation of several human cancer cell lines regardless of their endogenous levels of SPARC expression. Importantly, downregulation of SPARC levels in melanoma cells using either an antisense RNA or a shRNA against SPARC sensitized them to hMel-SPARC addition in proliferation and migration assays, suggesting that malignant cells developed a SPARC-resistance mechanism. This was not a general resistance to growth suppressing agents, as melanoma cells with restricted SPARC expression were more resistant to chemotherapeutic agents. Thus, malignant cells expressing or not expressing SPARC developed alternative mechanisms that, in contrary to stromal cells, rendered them SPARC-insensitive.
Insights
Secreted protein acidic and rich in cysteine (SPARC) affects cell proliferation differently in cancer. Malignant cells develop SPARC-resistance mechanisms, unlike stromal cells, impacting cancer progression.
Area of Science:
- Biochemistry
- Cell Biology
- Oncology
Background:
- Cellular interaction with the extracellular matrix (ECM) is crucial for cancer progression.
- Secreted protein acidic and rich in cysteine (SPARC), an ECM component, paradoxically inhibits some cell types while modulating tumor aggressiveness.
Purpose of the Study:
- To investigate the differential effects of SPARC from various sources on cell proliferation and behavior.
- To explore the mechanisms behind cancer cell resistance to SPARC.
Main Methods:
- Purification of melanoma-derived SPARC (hMel-SPARC) and comparison with recombinant SPARC.
- Assessing SPARC's effect on proliferation, adhesion, and migration of endothelial cells, fibroblasts, and cancer cell lines.
- Utilizing antisense RNA and shRNA to downregulate SPARC in melanoma cells.
Main Results:
- All tested SPARC variants inhibited endothelial cell proliferation, adhesion, and migration.
- hMel-SPARC impaired normal and transformed endothelial cell proliferation and showed biphasic effects on fibroblasts.
- SPARC did not affect the proliferation of tested human cancer cell lines, irrespective of their endogenous SPARC levels.
- Downregulating SPARC in melanoma cells sensitized them to hMel-SPARC, indicating developed resistance mechanisms.
Conclusions:
- Malignant cells develop SPARC-resistance mechanisms distinct from stromal cells.
- This resistance is specific to SPARC and not a general resistance to growth suppressors.
- Understanding these mechanisms is key to targeting cancer progression.
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