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.

Plos One
|April 20, 2012
PubMed
Abstract

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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