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The Use of Mouse Mammary Tumor Cells in an In Vitro Invasion Assay as a Measure of Oncogenic Cell Behavior
Published on: June 12, 2019
A 9-kDa matricellular SPARC fragment released by cathepsin D exhibits pro-tumor activity in the triple-negative
Lindsay B Alcaraz1, Aude Mallavialle1, Timothée David1
1IRCM, INSERM U1194, Univ Montpellier, ICM, Montpellier, France.
Abstract:
Rationale: Alternative therapeutic strategies based on tumor-specific molecular targets are urgently needed for triple-negative breast cancer (TNBC). The protease cathepsin D (cath-D) is a marker of poor prognosis in TNBC and a tumor-specific extracellular target for antibody-based therapy. The identification of cath-D substrates is crucial for the mechanistic understanding of its role in the TNBC microenvironment and future therapeutic developments. Methods: The cath-D substrate repertoire was investigated by N-Terminal Amine Isotopic Labeling of Substrates (TAILS)-based degradome analysis in a co-culture assay of TNBC cells and breast fibroblasts. Substrates were validated by amino-terminal oriented mass spectrometry of substrates (ATOMS). Cath-D and SPARC expression in TNBC was examined using an online transcriptomic survival analysis, tissue micro-arrays, TNBC cell lines, patient-derived xenografts (PDX), human TNBC samples, and mammary tumors from MMTV-PyMT Ctsd knock-out mice. The biological role of SPARC and its fragments in TNBC were studied using immunohistochemistry and immunofluorescence analysis, gene expression knockdown, co-culture assays, western blot analysis, RT-quantitative PCR, adhesion assays, Transwell motility, trans-endothelial migration and invasion assays. Results: TAILS analysis showed that the matricellular protein SPARC is a substrate of extracellular cath-D. In vitro, cath-D induced limited proteolysis of SPARC C-terminal extracellular Ca2+ binding domain at acidic pH, leading to the production of SPARC fragments (34-, 27-, 16-, 9-, and 6-kDa). Similarly, cath-D secreted by TNBC cells cleaved fibroblast- and cancer cell-derived SPARC at the tumor pericellular acidic pH. SPARC cleavage also occurred in TNBC tumors. Among these fragments, only the 9-kDa SPARC fragment inhibited TNBC cell adhesion and spreading on fibronectin, and stimulated their migration, endothelial transmigration, and invasion. Conclusions: Our study establishes a novel crosstalk between proteases and matricellular proteins in the tumor microenvironment through limited SPARC proteolysis, revealing a novel targetable 9-kDa bioactive SPARC fragment for new TNBC treatments. Our study will pave the way for the development of strategies for targeting bioactive fragments from matricellular proteins in TNBC.
Insights
Researchers identified a new therapeutic target for triple-negative breast cancer (TNBC). The protease cathepsin D (cath-D) cleaves SPARC, producing a 9-kDa fragment that promotes TNBC cell invasion and metastasis, offering a novel treatment strategy.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Triple-negative breast cancer (TNBC) requires novel therapeutic strategies targeting specific molecular markers.
- The protease cathepsin D (cath-D) is a prognostic indicator in TNBC and an extracellular target for antibody-based therapies.
- Understanding cath-D substrates is vital for elucidating its role in the TNBC microenvironment and developing new treatments.
Purpose of the Study:
- To identify and characterize cathepsin D (cath-D) substrates in the triple-negative breast cancer (TNBC) microenvironment.
- To investigate the functional role of SPARC (secreted protein acidic and rich in cysteine) and its fragments in TNBC progression.
- To explore novel therapeutic targets based on protease-substrate interactions in TNBC.
Main Methods:
- Degradome analysis using N-Terminal Amine Isotopic Labeling of Substrates (TAILS) and ATOMS mass spectrometry.
- Analysis of cathepsin D (cath-D) and SPARC expression in various TNBC models, including cell lines, patient-derived xenografts, and mouse models.
- Functional assays assessing the impact of SPARC fragments on TNBC cell adhesion, migration, invasion, and endothelial transmigration.
Main Results:
- The matricellular protein SPARC was identified as a direct substrate of extracellular cathepsin D (cath-D).
- Cath-D-mediated limited proteolysis of SPARC generated several fragments, including a 9-kDa fragment, at the acidic tumor microenvironment pH.
- The 9-kDa SPARC fragment was found to inhibit cell adhesion while promoting TNBC cell migration, transmigration, and invasion.
Conclusions:
- A novel protease-substrate interaction involving cathepsin D (cath-D) and SPARC was established in the TNBC tumor microenvironment.
- Limited SPARC proteolysis generates a 9-kDa bioactive fragment that enhances TNBC cell aggressiveness.
- This 9-kDa SPARC fragment represents a potential novel therapeutic target for triple-negative breast cancer treatment.

