Distinct levels in Pom1 gradients limit Cdr2 activity and localization to time and position division

Payal Bhatia1, Olivier Hachet1, Micha Hersch2

  • 1Department of Fundamental Microbiology; University of Lausanne; Lausanne, Switzerland.

Insights

The DYRK-family kinase Pom1 controls cell division timing and positioning in fission yeast by regulating the kinase Cdr2. Distinct Pom1 activity thresholds define Cdr2

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biophysics

Background:

  • Cell division timing and positioning are fundamental biological processes.
  • In fission yeast, Pom1 kinase forms gradients from cell poles to regulate division.
  • Pom1 influences Cdr2 kinase activity and localization, affecting cell division.

Purpose of the Study:

  • To quantitatively analyze the distributions of Pom1 and Cdr2 in fission yeast.
  • To elucidate the mechanisms by which Pom1 regulates Cdr2 activity and cell division.
  • To determine how Pom1 gradients control both the timing and positioning of cell division.

Main Methods:

  • Quantitative imaging of Pom1 and Cdr2 cortical distributions.
  • Analysis of cell division timing and positioning under various Pom1 activity conditions.
  • Investigation of Cdr2 phosphorylation and activity regulation by Pom1.

Main Results:

  • Pom1 and Cdr2 show limited overlap in cortical distribution, with Cdr2 levels increasing with cell elongation.
  • Distinct Pom1 activity thresholds, not just levels, dictate cell division timing and positioning.
  • Pom1 inhibits Cdr2 activity for mitotic commitment via phosphorylation, independent of Cdr2 localization or cortical levels.

Conclusions:

  • Pom1 gradients establish a medial Cdr2 domain for division placement and control Cdr2 activity for mitotic commitment.
  • Pom1's regulation of Cdr2 activity is crucial for coordinating cell division timing and spatial control.
  • Phosphorylation of Cdr2's inhibitory tail by Pom1 is a key mechanism for controlling cell division.