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Updated: May 4, 2026

In Vitro Assay to Study Tumor-macrophage Interaction
Published on: August 1, 2019
Tumor-associated vacuolar ATPase subunit promotes tumorigenic characteristics in macrophages
G K Katara1, M K Jaiswal1, A Kulshrestha1
1Department of Microbiology and Immunology, Rosalind Franklin University of Medicine and Science, North Chicago, IL, USA.
Abstract:
Macrophage polarization contributes to distinct human pathologies. In tumors, a polarized M2 phenotype called tumor-associated macrophages (TAMs) are associated with promotion of invasion and angiogenesis. In cancer cells, vacuolar ATPase (V-ATPase), a multi-subunit enzyme, is expressed on the plasma/vesicular membranes and critically influences the metastatic behavior. In addition, the soluble, cleaved N-terminal domain of a2 isoform of V-ATPase (a2NTD) is associated with in vitro induction of pro-tumorigenic properties in monocytes. This activity of a2 isoform of V-ATPase (a2V) caused us to investigate its role in cancer progression through the evaluation of the immunomodulatory properties of a2NTD. Here, we present direct evidence that surface expression of V-ATPase is associated with macrophage polarization in tumor tissue. Macrophages from BALB/c mice (peritoneal/bone marrow derived) were stimulated with recombinant a2NTD in both ex vivo and in vivo systems and evaluated for TAM characteristics. a2V was highly expressed in tumor tissues (breast and skin) as well as on the surface of tumor cell lines. The a2NTD-stimulated macrophages (a2MΦ) acquired TAM phenotype, which was characterized by elevated expression of mannose receptor-1, Arginase-1, interleukin-10 and transforming growth factor-β. a2MΦ also exhibited increased production of other tumorigenic factors including matrix metalloproteinase-9 and vascular endothelial growth factor. Further, a2MΦ were cocultured with mouse B-16F0 melanoma cells for their functional characterization. The coculture of these a2MΦ subsequently increased the invasion and angiogenesis of less invasive B-16F0 cells. When cocultured with naive T cells, a2MΦ significantly inhibited T-cell activation. The present data establish the role of V-ATPase in modulating a macrophage phenotype towards TAMs through the action of a2NTD, suggesting it to be a potential therapeutic target in cancer.
Insights
The N-terminal domain of V-ATPase (a2NTD) drives macrophage polarization towards tumor-associated macrophages (TAMs). This promotes cancer invasion and angiogenesis, suggesting V-ATPase as a therapeutic target.
Area of Science:
- Immunology
- Oncology
- Cell Biology
Background:
- Macrophage polarization is crucial in human diseases, with M2-polarized tumor-associated macrophages (TAMs) promoting cancer invasion and angiogenesis.
- Vacuolar ATPase (V-ATPase) is implicated in cancer metastasis, and its a2 isoform's N-terminal domain (a2NTD) can induce pro-tumorigenic properties in monocytes.
Purpose of the Study:
- To investigate the role of the a2 isoform of V-ATPase (a2V) in cancer progression by evaluating the immunomodulatory properties of a2NTD.
- To determine if a2NTD influences macrophage polarization towards a TAM phenotype.
Main Methods:
- Macrophages from BALB/c mice were stimulated with recombinant a2NTD ex vivo and in vivo.
- Macrophage phenotype and function were assessed by evaluating TAM markers, cytokine production, and co-culture assays with cancer cells and T cells.
- V-ATPase expression was analyzed in tumor tissues and cell lines.
Main Results:
- Surface V-ATPase expression correlated with macrophage polarization in tumor tissues.
- a2NTD-stimulated macrophages (a2MΦ) acquired a TAM phenotype, exhibiting elevated M2 markers (Mannose Receptor-1, Arginase-1, IL-10, TGF-β) and increased production of pro-tumorigenic factors (MMP-9, VEGF).
- Co-culture with a2MΦ enhanced melanoma cell invasion and angiogenesis, and suppressed T-cell activation.
Conclusions:
- V-ATPase, through its a2NTD, plays a significant role in modulating macrophage polarization towards a pro-tumorigenic TAM phenotype.
- These findings identify a2V as a potential therapeutic target for modulating the tumor microenvironment and inhibiting cancer progression.
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