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Barth, N. D.

Publications and source records attributed to Barth, N. D..

3 recordsLinked to original sources

Tie2 signaling in the tumor microenvironment orchestrates breast cancer cell dissemination through TMEM doorways

During breast cancer metastasis, tumor cells migrate toward intratumoral blood vessels and intravasate through stable structures known as TMEM (Tumor Microenvironment of Metastasis) doorways. TMEM doorways, composed of a Mena-expressing tumor cell, a Tie2hi/VEGFhi macrophage, and an endothelial cell, are clinically validated prognostic markers of distant metastasis in breast cancer and represent the exclusive sites of tumor cell intravasation. We previously demonstrated that Tie2 signaling is essential for TMEM doorway function and tumor cell intravasation. In this study, we investigated how Tie2 signaling promotes tumor cell intravasation and metastasis. Because all three TMEM doorway-associated cell types can express Tie2, we sought to determine which of these cells contribute to the Tie2 signaling-dependent vascular opening at TMEM doorways and tumor cell dissemination. We found that endothelial cells associated with TMEM doorways secrete Ang2, which stimulates VEGF-A expression in Tie2hi macrophages. Elevated VEGF-A levels at TMEM doorways increase vascular permeability, facilitating tumor cell entry into the bloodstream. Using tissue staining and line-scan analysis of Tie2 and lineage markers in human and mouse breast cancer models, we observed Tie2 expression in macrophages, tumor cells, and endothelial cells. To assess functional contributions, we selectively disrupted Tie2 in macrophages, endothelial cells, and cancer cells using CRISPR-Cas9 and RNAi approaches and tested in which of these cell-knockouts of Tie2 expression affected transendothelial migration in vitro. Macrophage-specific Tie2 deletion had the greatest impact on tumor cell intravasation. To confirm this finding in vivo, we generated a mouse model with inducible, macrophage-specific Tie2 knockout. Acute, targeted loss of Tie2 specifically in macrophages significantly reduced TMEM doorway associated vascular opening and tumor cell intravasation. Together, these findings establish macrophage Tie2 signaling as a critical driver of TMEM doorway-mediated vascular permeability and metastatic dissemination in breast cancer.

cancer biology↗

Metastatic dissemination of breast cancer stem cells requires MenaINV for lung extravasation but not survival

Cancer stemness is a pivotal driver of tumor initiation, treatment resistance, and tumor cell survival. Cancer stem cells (CSCs), though constituting only a small fraction of primary tumor cells, are progressively enriched during metastatic progression: from circulating tumor cells traveling in the bloodstream, to disseminated tumor cells lodged in the lung vasculature, to extravasated tumor cells that have entered tissue parenchyma. However, whether CSCs have an intrinsic advantage for extravasation over cancer non-stem cells (CnSCs), or simply their increased representation in circulation renders them more likely to extravasate, remains unresolved. MenaINV, an invasive isoform of the actin regulatory protein Mena, promotes tumor cell transendothelial migration in primary and secondary sites, yet the direct mechanistic link between stemness and MenaINV in lung metastasis remains unresolved. Here, using a validated fluorescent stemness reporter (SORE6) to identify CSCs, we found that CSCs display elevated MenaINV expression relative to CnSCs. High-resolution intravital imaging showed that CSCs extravasate efficiently into lung parenchyma and survive at higher levels, robustly forming metastatic lesions, while CnSCs show limited extravasation, low survival, and poor colonization. Mechanistically, MenaINV disruption in CSCs specifically impaired extravasation without affecting survival, demonstrating that MenaINV is the key extravasation effector downstream of stemness, whereas stemness-associated factors independently confer survival advantages. Moreover, reintroduction of MenaINV in CnSCs restores their extravasation ability upon which extravasated CnSCs reactivate stem program and form metastases. Overall, we discovered a hierarchical framework where stemness regulates both survival and extravasation capacity, with MenaINV as the key CSC extravasation effector. Significance: This study reveals how breast cancer stem cells achieve metastatic dominance through separable pathways: MenaINV-dependent extravasation and MenaINV-independent survival, providing rationale for targeting stem program to improve patient outcome.

cancer biology↗

FAK Inhibition Remodels the Metastatic ECM and Restores CD8+ T Cell Trafficking and Immunosurveillance

Metastatic breast cancer remains largely incurable, driven in part by immunosuppressive microenvironments that limit CD8+ T cell-mediated clearance. Using a murine pulmonary metastatic breast cancer model, we show that the focal adhesion kinase (FAK) inhibitor VS-4718 promotes a CD8+ T cell-dependent regression of metastatic lesions by reprograming the metastatic microenvironment. VS-4718 reduced immunosuppressive myeloid and regulatory T cells while increasing CD8+ T cell infiltration. Cellular and secreted proteome profiling revealed that VS-4718 downregulates ECM components such as laminin 5 and collagen VIII1, which we show impair CD8+ T cell migration and activity. In human breast cancer cohorts, elevated LAMA5/COL8A1 expression and a FAK-dependent ECM signature associate with poor outcome and prognostic for residual disease. Intravital imaging demonstrated that VS-4718 enhances CD8 T cell extravasation and induces T cell-tumor cell contacts necessary for cytotoxicity. Ex vivo lung slice cultures recapitulated these findings, showing enhanced T cell swarming, metastatic cluster shrinkage, and apoptosis. These findings reveal how FAK inhibition remodels the metastatic ECM to potentiate coordinated CD8+ T cell responses. VS-4718 might aid in clearing metastases in breast cancer patients through modulating both stromal and immune components. STATEMENT OF SIGNIFICANCEFocal adhesion kinase (FAK) inhibition remodels collagen- and laminin-rich extracellular matrix barriers and alleviates physical constraints that limit CD8 T cell access and activity in metastases. This enhances infiltration, migration, and tumor cell engagement, and synergizes with PD-1 blockade, supporting combined therapeutic strategies in metastatic breast cancer.

cancer biology↗