Tropomyosin isoform Tpm2.1 regulates collective and amoeboid cell migration and cell aggregation in breast epithelial
HyeRim Shin1, Dayoung Kim1, David M Helfman1
1Department of Biological Sciences, Korea Advanced Institute of Science and Technology, Daejeon, Republic of Korea.
Abstract:
Metastasis dissemination is the result of various processes including cell migration and cell aggregation. These processes involve alterations in the expression and organization of cytoskeletal and adhesion proteins in tumor cells. Alterations in actin filaments and their binding partners are known to be key players in metastasis. Downregulation of specific tropomyosin (Tpm) isoforms is a common characteristic of transformed cells. In this study, we examined the role of Tpm2.1 in non-transformed MCF10A breast epithelial cells in cell migration and cell aggregation, because this isoform is downregulated in primary and metastatic breast cancer as well as various breast cancer cell lines. Downregulation of Tpm2.1 using siRNA or shRNA resulted in retardation of collective cell migration but increase in single cell migration and invasion. Loss of Tpm2.1 is associated with enhanced actomyosin contractility and increased expression of E-cadherin and β-catenin. Furthermore, inhibition of Rho-associated kinase (ROCK) recovered collective cell migration in Tpm2.1-silenced cells. We also found that Tpm2.1-silenced cells formed more compacted spheroids and exhibited faster cell motility when spheroids were re-plated on 2D surfaces coated with fibronectin and collagen. When Tpm2.1 was downregulated, we observed a decrease in the level of AXL receptor tyrosine kinase, which may explain the increased levels of E-cadherin and β-catenin. These studies demonstrate that Tpm2.1 functions as an important regulator of cell migration and cell aggregation in breast epithelial cells. These findings suggest that downregulation of Tpm2.1 may play a critical role during tumor progression by facilitating the metastatic potential of tumor cells.
Insights
Tropomyosin 2.1 (Tpm2.1) downregulation in breast cells impairs collective cell migration but enhances single-cell invasion. Loss of Tpm2.1 promotes tumor progression and metastasis by altering cell adhesion and motility.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Biology
Background:
- Metastasis involves complex cellular processes like migration and aggregation.
- Cytoskeletal protein alterations, particularly actin-binding proteins like tropomyosin (Tpm), are crucial in metastasis.
- Specific Tpm isoforms, including Tpm2.1, are often downregulated in cancer cells.
Purpose of the Study:
- To investigate the role of Tpm2.1 in non-transformed MCF10A breast epithelial cells regarding cell migration and aggregation.
- To understand how Tpm2.1 downregulation influences breast cancer progression and metastatic potential.
Main Methods:
- Utilized siRNA and shRNA to downregulate Tpm2.1 expression in MCF10A cells.
- Assessed cell migration (collective and single), invasion, and spheroid formation.
- Analyzed actomyosin contractility, E-cadherin, β-catenin, and AXL receptor tyrosine kinase expression.
- Investigated the effect of Rho-associated kinase (ROCK) inhibition.
Main Results:
- Tpm2.1 downregulation reduced collective cell migration but increased single-cell migration and invasion.
- Loss of Tpm2.1 correlated with enhanced actomyosin contractility and increased E-cadherin/β-catenin expression.
- ROCK inhibition restored collective cell migration in Tpm2.1-silenced cells.
- Tpm2.1-silenced cells formed more compact spheroids with faster motility on fibronectin and collagen.
- Downregulation of Tpm2.1 led to decreased AXL receptor tyrosine kinase levels.
Conclusions:
- Tpm2.1 is a significant regulator of cell migration and aggregation in breast epithelial cells.
- Tpm2.1 downregulation may facilitate tumor progression by enhancing metastatic potential.
- Altered Tpm2.1 levels impact key cellular processes involved in cancer dissemination.
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