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Updated: May 23, 2026

Induction and Analysis of Epithelial to Mesenchymal Transition
Published on: August 27, 2013
A novel network integrating a miRNA-203/SNAI1 feedback loop which regulates epithelial to mesenchymal transition
Michèle Moes1, Antony Le Béchec, Isaac Crespo
1Cytoskeleton and Cell Plasticity Lab, Life Sciences Research Unit-FSCT, University of Luxembourg, Luxembourg, Luxembourg.
Background:
The majority of human cancer deaths are caused by metastasis. The metastatic dissemination is initiated by the breakdown of epithelial cell homeostasis. During this phenomenon, referred to as epithelial to mesenchymal transition (EMT), cells change their genetic and trancriptomic program leading to phenotypic and functional alterations. The challenge of understanding this dynamic process resides in unraveling regulatory networks involving master transcription factors (e.g. SNAI1/2, ZEB1/2 and TWIST1) and microRNAs. Here we investigated microRNAs regulated by SNAI1 and their potential role in the regulatory networks underlying epithelial plasticity.
Results:
By a large-scale analysis on epithelial plasticity, we highlighted miR-203 and its molecular link with SNAI1 and the miR-200 family, key regulators of epithelial homeostasis. During SNAI1-induced EMT in MCF7 breast cancer cells, miR-203 and miR-200 family members were repressed in a timely correlated manner. Importantly, miR-203 repressed endogenous SNAI1, forming a double negative miR203/SNAI1 feedback loop. We integrated this novel miR203/SNAI1 with the known miR200/ZEB feedback loops to construct an a priori EMT core network. Dynamic simulations revealed stable epithelial and mesenchymal states, and underscored the crucial role of the miR203/SNAI1 feedback loop in state transitions underlying epithelial plasticity.
Conclusion:
By combining computational biology and experimental approaches, we propose a novel EMT core network integrating two fundamental negative feedback loops, miR203/SNAI1 and miR200/ZEB. Altogether our analysis implies that this novel EMT core network could function as a switch controlling epithelial cell plasticity during differentiation and cancer progression.
Insights
We discovered a new regulatory network involving microRNA-203 and SNAI1 that controls epithelial plasticity. This network, along with the miR-200/ZEB loop, acts as a switch for cell state transitions in cancer progression.
Area of Science:
- Cellular Biology
- Molecular Oncology
- Systems Biology
Background:
- Metastasis, a major cause of cancer mortality, originates from disrupted epithelial cell homeostasis.
- Epithelial to mesenchymal transition (EMT) involves significant genetic and transcriptomic changes, leading to altered cell phenotypes and functions.
- Understanding EMT requires unraveling complex regulatory networks involving transcription factors and microRNAs.
Purpose of the Study:
- Investigate microRNAs regulated by SNAI1.
- Elucidate the role of these microRNAs in epithelial plasticity regulatory networks.
- Identify novel feedback loops in epithelial to mesenchymal transition.
Main Methods:
- Large-scale analysis of epithelial plasticity.
- Experimental validation in MCF7 breast cancer cells.
- Computational modeling and dynamic simulations of gene regulatory networks.
Main Results:
- Identified miR-203 as a key regulator linked to SNAI1 and the miR-200 family.
- Demonstrated timely repression of miR-203 and miR-200 family members during SNAI1-induced EMT.
- Discovered a double-negative feedback loop between miR-203 and SNAI1.
- Integrated miR203/SNAI1 and miR200/ZEB feedback loops into a core EMT network.
Conclusions:
- Proposed a novel EMT core network integrating miR203/SNAI1 and miR200/ZEB negative feedback loops.
- The network exhibits stable epithelial and mesenchymal states.
- This core network functions as a switch controlling epithelial cell plasticity during differentiation and cancer progression.
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