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Stirling, E. R.

Publications and source records attributed to Stirling, E. R..

2 recordsLinked to original sources

Anti-CD47 immunotherapy as a therapeutic strategy for the treatment of breast cancer brain metastasis

The presence of cell surface protein CD47 allows cancer cells to evade innate and adaptive immune surveillance resulting in metastatic spread. CD47 binds to and activates SIRP on the surface of myeloid cells, inhibiting their phagocytic activity. On the other hand, CD47 binds the matricellular protein Thrombospondin-1, limiting T-cell activation. Thus, blocking CD47 is a potential therapeutic strategy for preventing brain metastasis. To test this hypothesis, breast cancer patient biopsies were stained with antibodies against CD47 to determine differences in protein expression. An anti-CD47 antibody was used in a syngeneic orthotopic triple-negative breast cancer model, and CD47 null mice were used in a breast cancer brain metastasis model by intracardiac injection of the E0771-Br-Luc cell line. Immunohistochemical staining of patient biopsies revealed an 89% increase in CD47 expression in metastatic brain tumors compared to normal adjacent tissue (p [≤] 0.05). Anti-CD47 treatment in mice bearing brain metastatic 4T1br3 orthotopic tumors reduced tumor volume and tumor weight by over 50% compared to control mice (p [≤] 0.05) and increased IBA1 macrophage/microglia marker 5-fold in tumors compared to control (p [≤] 0.05). Additionally, CD47 blockade increased the M1/M2 macrophage ratio in tumors 2.5-fold (p [≤] 0.05). CD47 null mice had an 89% decrease in metastatic brain burden (p [≤] 0.05) compared to control mice in a brain metastasis model. Additionally, RNA sequencing revealed several uniquely expressed genes and significantly enriched genes related to tissue development, cell death, and cell migration tumors treated with anti-CD47 antibodies. Thus, demonstrating that CD47 blockade affects cancer cell and tumor microenvironment signaling to limit metastatic spread and may be an effective therapeutic for triple-negative breast cancer brain metastasis.

cancer biology↗

Absence of CD47 in the tumor microenvironment modulates tumor metabolism and immunosuppressive signatures limiting breast cancer progression.

The majority of breast cancers are generally considered immune-deprived tumors. This lack of immunogenicity severely hinders effectiveness of current immunotherapy approaches limiting therapeutic options to control disease. Therefore, we need new biomarkers to determine and enhance immune responses to improve the outcome of cancer patients experiencing invasive disease. Our data in matched human patient biopsies show that CD47 expression increases from primary to metastatic tumors. CD47 is an integral membrane protein that impairs antitumor immunosurveillance and influences normal tissue metabolism. However, whether CD47 plays a role in regulating tumor bioenergetics is unknown. A carcinogen-induced mouse mammary carcinogenesis model demonstrates that the absence of CD47 reduces tumor burden, which is associated with a distinct metabolic signature compared to WT tumors. Depletion of several lipid metabolites was observed in the absence of CD47, and metabolic dependency experiments suggest that anti-sense blockade of CD47 limits reliance on fatty acid oxidation as a fuel supporting cellular respiration on cancer cells. Our global metabolomics analysis also implicated the absence of CD47 in downregulation of immunosuppressive metabolites of the tryptophan and prostaglandin pathways. Spatial proteomic analysis revealed increased immune infiltrate and substantial reduction in immunosuppressive immune checkpoint proteins in the absence of CD47 with the highest reduction in intra-tumoral PD-L1 expression. Since anti-PD-L1 therapy is used in the current strategy to treat triple-negative breast cancer (TNBC), we targeted CD47 in an EMT-6 syngeneic TNBC model. The in vivo knockdown of CD47 sensitized tumors to anti-PD-L1 therapy to decrease tumor burden and increase intratumoral cytotoxic T cells. Therefore, targeting CD47 may be a suitable immunotherapeutic option to limit immunosuppression and enhance the efficacy of immune checkpoint blockade.

cancer biology↗