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Updated: Jan 25, 2026

Studying TGF-β Signaling and TGF-β-induced Epithelial-to-mesenchymal Transition in Breast Cancer and Normal Cells
Published on: October 27, 2020
A Ca2+-ATPase Regulates E-cadherin Biogenesis and Epithelial-Mesenchymal Transition in Breast Cancer Cells
Donna K Dang1, Monish Ram Makena1, José P Llongueras1
1Department of Physiology, The Johns Hopkins University School of Medicine, Baltimore, Maryland.
Abstract:
Progression of benign tumors to invasive, metastatic cancer is accompanied by the epithelial-to-mesenchymal transition (EMT), characterized by loss of the cell-adhesion protein E-cadherin. Although silencing mutations and transcriptional repression of the E-cadherin gene have been widely studied, not much is known about posttranslational regulation of E-cadherin in tumors. We show that E-cadherin is tightly coexpressed with the secretory pathway Ca2+-ATPase isoform 2, SPCA2 (ATP2C2), in breast tumors. Loss of SPCA2 impairs surface expression of E-cadherin and elicits mesenchymal gene expression through disruption of cell adhesion in tumorspheres and downstream Hippo-YAP signaling. Conversely, ectopic expression of SPCA2 in triple-negative breast cancer elevates baseline Ca2+ and YAP phosphorylation, enhances posttranslational expression of E-cadherin, and suppresses mesenchymal gene expression. Thus, loss of SPCA2 phenocopies loss of E-cadherin in the Hippo signaling pathway and EMT-MET transitions, consistent with a functional role for SPCA2 in E-cadherin biogenesis. Furthermore, we show that SPCA2 suppresses invasive phenotypes, including cell migration in vitro and tumor metastasis in vivo. Based on these findings, we propose that SPCA2 functions as a key regulator of EMT and may be a potential therapeutic target for treatment of metastatic cancer. IMPLICATIONS: Posttranslational control of E-cadherin and the Hippo pathway by calcium signaling regulates EMT in breast cancer cells.
Insights
Loss of SPCA2 impairs E-cadherin, promoting cancer metastasis. Restoring SPCA2 enhances E-cadherin, suppresses mesenchymal genes, and inhibits tumor spread, suggesting SPCA2 as a therapeutic target for metastatic breast cancer.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Epithelial-to-mesenchymal transition (EMT) drives cancer progression and metastasis.
- Loss of E-cadherin is a hallmark of EMT.
- Posttranslational regulation of E-cadherin in tumors remains understudied.
Purpose of the Study:
- Investigate the role of secretory pathway Ca2+-ATPase isoform 2 (SPCA2) in E-cadherin regulation and breast cancer progression.
- Determine SPCA2's impact on EMT, Hippo-YAP signaling, and metastatic phenotypes.
Main Methods:
- Coexpression analysis of SPCA2 and E-cadherin in breast tumors.
- Functional studies in tumorspheres and triple-negative breast cancer cells.
- Assessment of cell migration in vitro and tumor metastasis in vivo.
Main Results:
- SPCA2 loss impairs E-cadherin surface expression and promotes mesenchymal gene expression via Hippo-YAP signaling.
- SPCA2 re-expression enhances E-cadherin, suppresses mesenchymal genes, and reduces invasiveness.
- SPCA2 deficiency phenocopies E-cadherin loss in EMT and Hippo pathway regulation.
Conclusions:
- SPCA2 is a key regulator of E-cadherin biogenesis and EMT in breast cancer.
- SPCA2 suppresses tumor cell migration and metastasis.
- SPCA2 represents a potential therapeutic target for metastatic breast cancer.
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