Opposite effects of tor1 and tor2 on nitrogen starvation responses in fission yeast

Ronit Weisman1, Irina Roitburg, Miriam Schonbrun

  • 1Department of Molecular Microbiology and Biotechnology, Faculty of Life Sciences, Tel Aviv University, Tel Aviv 69978, Israel. ronitt@post.tau.ac.il

Genetics
|December 21, 2006
PubMed

Insights

Fission yeast Tor2 regulates cell cycle and gene expression during starvation, contrasting with Tor1

Area of Science:

  • Cellular Biology
  • Molecular Biology
  • Genetics

Background:

  • TOR (Target of Rapamycin) kinases are crucial for cell growth and proliferation.
  • Fission yeast possesses two TOR homologs: tor1(+) and tor2(+).
  • tor1(+) is involved in starvation and stress responses, while tor2(+) is essential for cell viability.

Purpose of the Study:

  • To investigate the roles of fission yeast TOR homologs (tor1(+) and tor2(+)) in cellular processes.
  • To elucidate the genetic interactions between TOR pathway components and orthologs of TSC1, TSC2, and Rheb.
  • To understand the implications for rapamycin sensitivity in these genetic interactions.

Main Methods:

  • Comparative phenotypic analysis of tor1 and tor2 mutants under nitrogen starvation.
  • Genetic interaction studies involving fission yeast orthologs of TSC1, TSC2, and Rheb.
  • Assessment of amino acid permease expression and growth on poor nitrogen sources.

Main Results:

  • Tor2 depletion mimics nitrogen starvation response, causing G(1) arrest and gene induction.
  • tor2 mutants exhibit phenotypes distinct from tor1 mutants under nitrogen starvation.
  • The Tsc1-2 complex negatively regulates Tor2, similar to higher eukaryotes.
  • Tsc1-2 and Tor1 function in parallel pathways to regulate amino acid uptake.
  • Tsc1/2 or Tor1 are essential for growth on proline; Tsc1/2 mutants show rapamycin sensitivity on poor nitrogen.

Conclusions:

  • Fission yeast Tor2 plays a critical role in nutrient-sensing pathways and cell cycle control.
  • The Tsc1-2 complex and Tor1 exhibit distinct regulatory roles and genetic interactions.
  • These findings provide insights into the conserved functions of TOR signaling and its regulation by TSC proteins.

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