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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
Abstract:
The TOR protein kinases exhibit a conserved role in regulating cellular growth and proliferation. In the fission yeast two TOR homologs are present. tor1(+) is required for starvation and stress responses, while tor2(+) is essential. We report here that Tor2 depleted cells show a phenotype very similar to that of wild-type cells starved for nitrogen, including arrest at the G(1) phase of the cell cycle, induction of nitrogen-starvation-specific genes, and entrance into the sexual development pathway. The phenotype of tor2 mutants is in a striking contrast to the failure of tor1 mutants to initiate sexual development or arrest in G(1) under nitrogen starvation conditions. Tsc1 and Tsc2, the genes mutated in the human tuberous sclerosis complex syndrome, negatively regulate the mammalian TOR via inactivation of the GTPase Rheb. We analyzed the genetic relationship between the two TOR genes and the Schizosaccharomyces pombe orthologs of TSC1, TSC2, and Rheb. Our data suggest that like in higher eukaryotes, the Tsc1-2 complex negatively regulates Tor2. In contrast, the Tsc1-2 complex and Tor1 appear to work in parallel, both positively regulating amino acid uptake through the control of expression of amino acid permeases. Additionally, either Tsc1/2 or Tor1 are required for growth on a poor nitrogen source such as proline. Mutants lacking Tsc1 or Tsc2 are highly sensitive to rapamycin under poor nitrogen conditions, suggesting that the function of Tor1 under such conditions is sensitive to rapamycin. We discuss the complex genetic interactions between tor1(+), tor2(+), and tsc1/2(+) and the implications for rapamycin sensitivity in tsc1 or tsc2 mutants.
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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