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Updated: Jan 22, 2026

Studying Wnt Signaling During Patterning of Conducting Airways
Published on: October 16, 2016
Alterations in Wnt- and/or STAT3 signaling pathways and the immune microenvironment during metastatic progression
S J Kim1, S Garcia-Recio2, C J Creighton3
1Department of Molecular and Cellular Biology, Baylor College of Medicine, Houston, TX, USA.
Abstract:
Metastatic breast cancer is an extremely complex disease with limited treatment options due to the lack of information about the major characteristics of metastatic disease. There is an urgent need, therefore, to understand the changes in cellular complexity and dynamics that occur during metastatic progression. In the current study, we analyzed the cellular and molecular differences between primary tumors and paired lung metastases using a syngeneic p53-null mammary tumor model of basal-like breast cancer. Distinct subpopulations driven by the Wnt- and/or STAT3 signaling pathways were detected in vivo using a lentiviral Wnt- and STAT3 signaling reporter system. A significant increase in the overlapping populations driven by both the Wnt- and STAT3 signaling pathways was observed in the lung metastases as compared to the primary tumors. Furthermore, the overlapping populations showed a higher metastatic potential relative to the other populations and pharmacological inhibition of both signaling pathways was shown to markedly reduce the metastatic lesions in established lung metastases. An analysis of the unique molecular features of the lung metastases revealed a significant association with immune response signatures. Specifically, Foxp3 gene expression was markedly increased and elevated levels of Foxp3 + Treg cells were detected in close proximity to lung metastases. Collectively, these studies illustrate the importance of analyzing intratumoral heterogeneity, changes in population dynamics, and the immune microenvironment during metastatic progression.
Insights
Targeting Wnt and STAT3 signaling pathways in basal-like breast cancer lung metastases significantly reduced tumor spread. These findings highlight the importance of understanding cellular dynamics and the immune microenvironment in metastatic progression.
Area of Science:
- Oncology
- Cancer Metastasis Research
- Molecular Biology
Background:
- Metastatic breast cancer (MBC) is complex, with limited treatment options due to poorly understood metastatic characteristics.
- Understanding cellular complexity and dynamics during metastatic progression is crucial for developing effective therapies.
Purpose of the Study:
- To investigate cellular and molecular differences between primary tumors and lung metastases in basal-like breast cancer.
- To identify key signaling pathways and immune factors driving metastatic progression.
Main Methods:
- Utilized a syngeneic p53-null mammary tumor model of basal-like breast cancer.
- Employed a lentiviral Wnt and STAT3 signaling reporter system to detect distinct subpopulations in vivo.
- Analyzed gene expression (Foxp3) and immune cell infiltration (Foxp3+ Treg cells).
Main Results:
- Identified distinct subpopulations driven by Wnt and/or STAT3 signaling pathways.
- Observed increased overlapping Wnt/STAT3-driven populations in lung metastases, correlating with higher metastatic potential.
- Pharmacological inhibition of Wnt and STAT3 pathways reduced metastatic lesions.
- Lung metastases showed increased Foxp3 gene expression and elevated Foxp3+ Treg cells.
Conclusions:
- Intratumoral heterogeneity and population dynamics are critical in metastatic progression.
- Wnt and STAT3 signaling pathways play a significant role in driving metastasis.
- The immune microenvironment, particularly Treg cells, is associated with lung metastases and may be a therapeutic target.
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