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Studying TGF-β Signaling and TGF-β-induced Epithelial-to-mesenchymal Transition in Breast Cancer and Normal Cells
Published on: October 27, 2020
TMEM216 inhibits breast cancer lung metastasis by modulating IGF1R-IRS4 signaling pathway
Yingying Wang1, Xinyang Bai1, Zhiyuan Du1
1Shandong Provincial Key Laboratory of Development and Regeneration, School of Life Sciences, Shandong University, Qingdao, China.
Abstract:
Breast cancer (BC) metastasis remains a major cause of mortality, yet the molecular mechanisms driving this process are incompletely understood. This study identifies TMEM216, a transmembrane protein implicated in ciliary homeostasis, as a suppressor of lung metastasis in BC. Using mammary-specific Tmem216 knockout mice, we demonstrate that Tmem216 deficiency promotes lung metastasis without affecting primary tumor proliferation. Clinical analyses reveal reduced TMEM216 expression in metastatic lesions and aggressive cell lines, correlating with poor patient distant metastasis-free survival. Mechanistically, TMEM216 interacts with IGF1R and binds to IRS4 via the conserved K79-D1049 interaction, disrupting the IGF1R-IRS4 complex formation and suppressing IGF pathway activation. Rescue experiments in vitro and in vivo confirm that TMEM216-mediated metastasis inhibition depends on IGF signaling modulation. Tissue microarray analyses further establish an inverse correlation between TMEM216 levels and IGF1R phosphorylation in BC patients, with low TMEM216 expression associated with advanced metastasis. These findings delineate TMEM216 as a critical regulator of the IGF1R-IRS4 axis, offering therapeutic opportunities for targeting metastatic BC.
Insights
Transmembrane protein 216 (TMEM216) suppresses breast cancer lung metastasis by regulating the IGF1R-IRS4 pathway. Low TMEM216 expression correlates with advanced metastasis and poor survival in breast cancer patients.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Breast cancer (BC) metastasis is a primary cause of cancer mortality.
- Molecular mechanisms driving BC metastasis are not fully understood.
Purpose of the Study:
- Identify novel regulators of BC lung metastasis.
- Investigate the role of TMEM216 in BC metastasis and its underlying molecular mechanisms.
Main Methods:
- Mammary-specific Tmem216 knockout mouse models.
- In vitro and in vivo functional assays.
- Analysis of clinical patient samples (tissue microarrays).
- Molecular interaction studies (protein-protein binding).
Main Results:
- Tmem216 deficiency in mice promotes lung metastasis without affecting primary tumor growth.
- Reduced TMEM216 expression is observed in metastatic BC lesions and aggressive cell lines.
- TMEM216 interacts with IGF1R and IRS4, inhibiting IGF pathway activation.
- Low TMEM216 expression correlates with poor distant metastasis-free survival in BC patients.
Conclusions:
- TMEM216 acts as a suppressor of breast cancer lung metastasis.
- TMEM216 regulates metastasis by modulating the IGF1R-IRS4 signaling axis.
- TMEM216 represents a potential therapeutic target for metastatic breast cancer.
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