Related Experiment Video
Updated: Jul 4, 2025

Studying TGF-β Signaling and TGF-β-induced Epithelial-to-mesenchymal Transition in Breast Cancer and Normal Cells
Published on: October 27, 2020
Cytoskeleton remodeling induced by SMYD2 methyltransferase drives breast cancer metastasis
Alexandre G Casanova1, Gael S Roth1,2, Simone Hausmann3
1Grenoble Alpes University, CNRS UMR 5309, INSERM U 1209, Institute for Advanced Biosciences, Grenoble, France.
Abstract:
Malignant forms of breast cancer refractory to existing therapies remain a major unmet health issue, primarily due to metastatic spread. A better understanding of the mechanisms at play will provide better insights for alternative treatments to prevent breast cancer cell dispersion. Here, we identify the lysine methyltransferase SMYD2 as a clinically actionable master regulator of breast cancer metastasis. While SMYD2 is overexpressed in aggressive breast cancers, we notice that it is not required for primary tumor growth. However, mammary-epithelium specific SMYD2 ablation increases mouse overall survival by blocking the primary tumor cell ability to metastasize. Mechanistically, we identify BCAR3 as a genuine physiological substrate of SMYD2 in breast cancer cells. BCAR3 monomethylated at lysine K334 (K334me1) is recognized by a novel methyl-binding domain present in FMNLs proteins. These actin cytoskeleton regulators are recruited at the cell edges by the SMYD2 methylation signaling and modulate lamellipodia properties. Breast cancer cells with impaired BCAR3 methylation lose migration and invasiveness capacity in vitro and are ineffective in promoting metastases in vivo. Remarkably, SMYD2 pharmacologic inhibition efficiently impairs the metastatic spread of breast cancer cells, PDX and aggressive mammary tumors from genetically engineered mice. This study provides a rationale for innovative therapeutic prevention of malignant breast cancer metastatic progression by targeting the SMYD2-BCAR3-FMNL axis.
Insights
Targeting SMYD2, a key regulator of breast cancer metastasis, offers a new therapeutic strategy. Inhibiting SMYD2 blocks cancer cell spread, improving survival by disrupting the SMYD2-BCAR3-FMNL pathway.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Metastatic breast cancer remains a significant clinical challenge, driving mortality.
- Understanding the molecular mechanisms of cancer cell dispersion is crucial for developing new treatments.
Purpose of the Study:
- To identify key regulators of breast cancer metastasis.
- To investigate the therapeutic potential of targeting these regulators.
Main Methods:
- Investigated the role of lysine methyltransferase SMYD2 in breast cancer.
- Utilized mouse models with mammary-epithelium specific SMYD2 ablation.
- Identified BCAR3 as a substrate of SMYD2 and analyzed its methylation.
- Examined the interaction of methylated BCAR3 with FMNL proteins.
- Assessed the impact of SMYD2 inhibition on cancer cell migration, invasion, and metastasis in vitro and in vivo.
Main Results:
- SMYD2 is overexpressed in aggressive breast cancers and drives metastasis, but not primary tumor growth.
- SMYD2 ablation in mice significantly improves survival by preventing cancer cell metastasis.
- SMYD2 methylates BCAR3 at K334, facilitating its interaction with FMNL proteins.
- This interaction regulates actin cytoskeleton dynamics and lamellipodia formation, crucial for cell migration.
- Pharmacologic inhibition of SMYD2 effectively reduces metastatic spread in various models.
Conclusions:
- SMYD2 acts as a master regulator of breast cancer metastasis via the BCAR3-FMNL axis.
- Targeting the SMYD2-BCAR3-FMNL pathway represents a promising therapeutic strategy for preventing breast cancer metastasis.
Related Concept Videos
Destabilization of Microtubules
Metastasis
Epithelial-to-Mesenchymal Transition
The epithelial-to-mesenchymal transition or EMT is a developmental process commonly observed in wound healing, embryogenesis, and cancer metastasis. EMT is induced by transforming growth factor-beta (TGF-β) or receptor tyrosine kinase (RTK) ligands, which further...
Cancer Cell Migration through Invadopodia
Cytoskeletal Coordination in Cell Migration
Chemotaxis and Direction of Cell Migration
Microtubule Formation

