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TOR controls translation initiation and early G1 progression in yeast.

Molecular Biology of the Cell · 1996 · Vol. 7(1) · pp. 25–42
Nik BarbetUlrich SchneiderStephen B. HelliwellIan StansfieldMick F. TuiteMichael N. Hall

Abstract

Saccharomyces cerevisiae cells treated with the immunosuppressant rapamycin or depleted for the targets of rapamycin TOR1 and TOR2 arrest growth in the early G1 phase of the cell cycle. Loss of TOR function also causes an early inhibition of translation initiation and induces several other physiological changes characteristic of starved cells entering stationary phase (G0). A G1 cyclin mRNA whose translational control is altered by substitution of the UBI4 5' leader region (UBI4 is normally translated under starvation conditions) suppresses the rapamycin-induced G1 arrest and confers starvation sensitivity. These results suggest that the block in translation initiation is a direct consequence of loss of TOR function and the cause of the G1 arrest. We propose that the TORs, two related phosphatidylinositol kinase homologues, are part of a novel signaling pathway that activates eIF-4E-dependent protein synthesis and, thereby, G1 progression in response to nutrient availability. Such a pathway may constitute a checkpoint that prevents early G1 progression and growth in the absence of nutrients.

Fungal and yeast genetics researchPolyamine Metabolism and ApplicationsPI3K/AKT/mTOR signaling in cancerBiologyTranslation (biology)Cell biologyCell cycleCyclinProtein biosynthesisSaccharomyces cerevisiaePhosphatidylinositolKinasePI3K/AKT/mTOR pathway

MeSH terms

Antifungal AgentsBase SequenceFlow CytometryFungal ProteinsMolecular Sequence DataPeptide Chain Initiation, TranslationalPlasmidsPolyenesSaccharomyces cerevisiaeProtein BiosynthesisBlotting, NorthernSignal TransductionGene Expression Regulation, FungalG1 PhaseCyclins
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TOR controls translation initiation and early G1 progression in yeast. · Scinovex