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Targeting the MAtrix REgulating MOtif abolishes several hallmarks of cancer, triggering antitumor immunity
Chengbei Li1,2,3, Amanpreet Kaur1,2,3, Alexia Pavlidaki1,2,3
1University of Strasbourg, Strasbourg 67091, France.
Abstract:
Tumor-targeted therapies have often been inefficient due to the lack of concomitant control over the tumor microenvironment. Using an immunocompetent autologous breast cancer model, we investigated a MAtrix REgulating MOtif (MAREMO)-mimicking peptide, which inhibits the protumorigenic extracellular matrix (ECM) molecule tenascin-C that activates several cancer hallmarks. In cultured cells, targeting the MAREMO blocks tenascin-C signaling involved in cell adhesion and immune-suppression by inhibiting tenascin-C interactions with fibronectin, TGFβ, CXCL12, and others, thereby blocking downstream events. Using RNASequencing and various genetic, molecular, in situ, and in vivo assays, we demonstrate that the MAREMO peptide similarly blocks multiple tenascin-C functions in vivo. This includes releasing tumor-infiltrating leukocytes, including CD8+ T cells, from the stroma. The MAREMO peptide also triggers interferon signaling, restoring antitumor immunity, contributing to tumor growth inhibition and reduced dissemination. The MAREMO peptide targets tumor cells directly by promoting growth suppression and inhibiting phenotypic plasticity, subsequently enhancing responsiveness to the endogenous death inducer tumor necrosis factor-related apoptosis-inducing ligand, as shown by a loss-of-function approach. Moreover, the MAREMO peptide largely subdues the tumor bed by depleting fibroblasts, repressing tenascin-C and other ECM molecules, and restoring the function of the few remaining blood vessels. In conclusion, targeting tenascin-C with a MAREMO peptide represents a powerful anticancer strategy with a broad inhibition of several cancer hallmarks.
Insights
A novel peptide targeting tenascin-C (a tumor microenvironment molecule) effectively inhibits cancer growth and spread. This approach restores antitumor immunity and enhances treatment responsiveness by modulating the tumor bed and directly impacting cancer cells.
Area of Science:
- Oncology
- Immunology
- Biochemistry
Background:
- Tumor-targeted therapies face challenges due to inadequate control over the tumor microenvironment.
- The extracellular matrix (ECM) molecule tenascin-C promotes tumor progression and immune suppression.
Purpose of the Study:
- To investigate a peptide mimicking a MAtrix REgulating MOtif (MAREMO) to inhibit tenascin-C's protumorigenic functions.
- To evaluate the peptide's efficacy in blocking tenascin-C signaling and its impact on the tumor microenvironment and cancer hallmarks.
Main Methods:
- Utilized an immunocompetent autologous breast cancer model.
- Employed RNA-sequencing, genetic, molecular, in situ, and in vivo assays.
- Investigated peptide interactions with fibronectin, TGFβ, and CXCL12, and assessed effects on leukocytes, fibroblasts, and blood vessels.
Main Results:
- The MAREMO peptide inhibited tenascin-C signaling, blocking cell adhesion and immune suppression.
- In vivo, the peptide released tumor-infiltrating leukocytes (including CD8+ T cells) and triggered interferon signaling, restoring antitumor immunity.
- The peptide suppressed tumor growth, reduced dissemination, inhibited cancer cell plasticity, and enhanced sensitivity to apoptosis.
Conclusions:
- Targeting tenascin-C with the MAREMO peptide is a potent anticancer strategy.
- This approach broadly inhibits multiple cancer hallmarks by modulating the tumor microenvironment and directly affecting cancer cells.
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