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Published on: April 13, 2015
TOR complex 2 controls gene silencing, telomere length maintenance, and survival under DNA-damaging conditions
Miriam Schonbrun1, Dana Laor, Luis López-Maury
1Department of Molecular Microbiology and Biotechnology, Tel-Aviv University, Tel-Aviv, Israel.
Abstract:
The Target Of Rapamycin (TOR) kinase belongs to the highly conserved eukaryotic family of phosphatidylinositol-3-kinase-related kinases (PIKKs). TOR proteins are found at the core of two distinct evolutionarily conserved complexes, TORC1 and TORC2. Disruption of TORC1 or TORC2 results in characteristically dissimilar phenotypes. TORC1 is a major cell growth regulator, while the cellular roles of TORC2 are not well understood. In the fission yeast Schizosaccharomyces pombe, Tor1 is a component of the TORC2 complex, which is particularly required during starvation and various stress conditions. Our genome-wide gene expression analysis of Deltator1 mutants indicates an extensive similarity with chromatin structure mutants. Consistently, TORC2 regulates several chromatin-mediated functions, including gene silencing, telomere length maintenance, and tolerance to DNA damage. These novel cellular roles of TORC2 are rapamycin insensitive. Cells lacking Tor1 are highly sensitive to the DNA-damaging drugs hydroxyurea (HU) and methyl methanesulfonate, similar to mutants of the checkpoint kinase Rad3 (ATR). Unlike Rad3, Tor1 is not required for the cell cycle arrest in the presence of damaged DNA. Instead, Tor1 becomes essential for dephosphorylation and reactivation of the cyclin-dependent kinase Cdc2, thus allowing reentry into mitosis following recovery from DNA replication arrest. Taken together, our data highlight critical roles for TORC2 in chromatin metabolism and in promoting mitotic entry, most notably after recovery from DNA-damaging conditions. These data place TOR proteins in line with other PIKK members, such as ATM and ATR, as guardians of genome stability.
Insights
The Target Of Rapamycin complex 2 (TORC2) regulates chromatin and DNA damage tolerance in yeast. TORC2 is crucial for mitotic entry after DNA replication stress, highlighting its role in genome stability.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The Target Of Rapamycin (TOR) kinase is a conserved PIKK family member.
- TOR exists in two complexes, TORC1 and TORC2, with distinct functions.
- TORC1 regulates cell growth, but TORC2's roles are less understood.
Purpose of the Study:
- Investigate the function of TORC2 in the fission yeast Schizosaccharomyces pombe.
- Determine TORC2's role in response to DNA damage and stress.
- Elucidate TORC2's contribution to genome stability.
Main Methods:
- Genome-wide gene expression analysis of Deltator1 mutants.
- Phenotypic analysis of Deltator1 mutants under DNA-damaging conditions.
- Assays for cell cycle progression and mitotic entry.
Main Results:
- Deltator1 mutants exhibit similarities to chromatin structure mutants.
- TORC2 regulates gene silencing, telomere length, and DNA damage tolerance.
- Tor1 is essential for Cdc2 reactivation and mitotic entry after DNA replication arrest, but not for cell cycle arrest.
Conclusions:
- TORC2 plays critical roles in chromatin metabolism and mitotic entry following DNA damage recovery.
- TORC2 acts as a guardian of genome stability, alongside PIKK family members like ATM and ATR.
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