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Published on: November 20, 2015
SPARC Promotes Cell Invasion In Vivo by Decreasing Type IV Collagen Levels in the Basement Membrane
Meghan A Morrissey1, Ranjay Jayadev1, Ginger R Miley1
1Department of Biology, Duke University, Durham, North Carolina, United States of America.
Abstract:
Overexpression of SPARC, a collagen-binding glycoprotein, is strongly associated with tumor invasion through extracellular matrix in many aggressive cancers. SPARC regulates numerous cellular processes including integrin-mediated cell adhesion, cell signaling pathways, and extracellular matrix assembly; however, the mechanism by which SPARC promotes cell invasion in vivo remains unclear. A main obstacle in understanding SPARC function has been the difficulty of visualizing and experimentally examining the dynamic interactions between invasive cells, extracellular matrix and SPARC in native tissue environments. Using the model of anchor cell invasion through the basement membrane (BM) extracellular matrix in Caenorhabditis elegans, we find that SPARC overexpression is highly pro-invasive and rescues BM transmigration in mutants with defects in diverse aspects of invasion, including cell polarity, invadopodia formation, and matrix metalloproteinase expression. By examining BM assembly, we find that overexpression of SPARC specifically decreases levels of BM type IV collagen, a crucial structural BM component. Reduction of type IV collagen mimicked SPARC overexpression and was sufficient to promote invasion. Tissue-specific overexpression and photobleaching experiments revealed that SPARC acts extracellularly to inhibit collagen incorporation into BM. By reducing endogenous SPARC, we also found that SPARC functions normally to traffic collagen from its site of synthesis to tissues that do not express collagen. We propose that a surplus of SPARC disrupts extracellular collagen trafficking and reduces BM collagen incorporation, thus weakening the BM barrier and dramatically enhancing its ability to be breached by invasive cells.
Insights
Overexpression of SPARC, a collagen-binding glycoprotein, promotes cancer cell invasion by disrupting basement membrane collagen. This glycoprotein weakens the matrix barrier, aiding tumor spread.
Area of Science:
- Biochemistry
- Cell Biology
- Cancer Research
Background:
- SPARC (secreted protein acidic and rich in cysteine) is a glycoprotein implicated in aggressive cancers.
- SPARC influences cell adhesion, signaling, and extracellular matrix (ECM) assembly, but its role in vivo invasion is unclear.
- Visualizing SPARC-cell-ECM interactions in native tissues is challenging.
Purpose of the Study:
- To elucidate the mechanism by which SPARC promotes cancer cell invasion in vivo.
- To investigate SPARC's role in extracellular matrix remodeling during invasion.
Main Methods:
- Utilized Caenorhabditis elegans anchor cell invasion model.
- Examined SPARC overexpression effects on basement membrane (BM) transmigration.
- Assessed BM type IV collagen levels and SPARC's impact on collagen incorporation.
- Performed tissue-specific overexpression and photobleaching experiments.
- Reduced endogenous SPARC to study normal collagen trafficking.
Main Results:
- SPARC overexpression significantly enhanced cell invasion and rescued defects in invasion-related mutants.
- Overexpressed SPARC reduced basement membrane type IV collagen levels.
- SPARC acts extracellularly to inhibit collagen incorporation into the BM.
- SPARC normally facilitates collagen transport to tissues lacking collagen synthesis.
Conclusions:
- SPARC surplus disrupts collagen trafficking and incorporation into the BM.
- This disruption weakens the BM barrier, promoting cancer cell invasion.
- SPARC's dual role in collagen transport and BM integrity is crucial for understanding tumor metastasis.
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