Epithelial tricellular junctions act as interphase cell shape sensors to orient mitosis

Floris Bosveld1, Olga Markova1, Boris Guirao1

  • 1Polarity, Division and Morphogenesis Team, Institut Curie, CNRS UMR 3215, INSERM U934, 26 rue d'Ulm, 75248 Paris Cedex 05, France.

Nature
|February 18, 2016
PubMed

Insights

Tricellular junctions (TCJs) in Drosophila epithelia orient cell division by sensing interphase cell shape. These junctions act as polarity cues, guiding division orientation even as cells round up during mitosis.

Area of Science:

  • Cell biology
  • Developmental biology
  • Biophysics

Background:

  • Hertwig's rule describes cell division orientation along the interphase cell's long axis, crucial for tissue development.
  • Epithelial cell shape is influenced by adhesion, stress, and polarity pathways, but mechanisms for sensing this shape during division are unclear.
  • During mitosis, epithelial cells round, complicating the inheritance of interphase shape information for division orientation.

Purpose of the Study:

  • To investigate the mechanisms by which epithelial cells sense their interphase shape to orient cell division.
  • To identify the molecular players and structures involved in this shape-sensing process.
  • To understand how division orientation is maintained as cells transition to mitosis.

Main Methods:

  • Utilized Drosophila epithelia as a model system.
  • Investigated the role of tricellular junctions (TCJs) in orienting cell division.
  • Employed genetic manipulation, live imaging, and computational simulations.
  • Focused on the Dynein-associated protein Mud and the Pins/Gαi pathway.

Main Results:

  • Tricellular junctions (TCJs) localize force generators that pull on astral microtubules, orienting cell division via the Mud protein.
  • This orientation mechanism operates independently of the classical Pins/Gαi pathway.
  • TCJs act as spatial landmarks during mitotic rounding, encoding interphase cell shape anisotropy to guide division.
  • Shape and mechanical strain sensing by TCJs arise from their distribution geometry within epithelial tissues.

Conclusions:

  • TCJs are key regulators of cell division orientation in Drosophila epithelia.
  • TCJs integrate geometric and mechanical cues from the tissue environment to orient division.
  • Beyond barrier functions, TCJs act as critical polarity cues for epithelial morphogenesis and tissue mechanics.

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