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mTOR: a protein kinase switching between life and death
Laura Asnaghi1, Paola Bruno, Marcella Priulla
1Department of Pharmacology, University of Milan, Via Vanvitelli 32, 20129 Milan, Italy.
Abstract:
The mammalian target of rapamycin (mTOR) is a central regulator of ribosome biogenesis, protein synthesis, cell growth and neurite plasticity. The mTOR kinase controls the translation machinery, in response to amino acids and growth factors, via activation of p70 ribosomal S6 kinase (p70S6K) and inhibition of eIF-4E binding protein (4E-BP1). The mTOR protein belongs to the PI3K pathway activated by insulin, nutrients and growth factors. The PI3K pathway involves the Akt kinase, an upstream regulator of mTOR. Rapamycin is a potent immunosuppressant and investigational anticancer drug, which inhibits mTOR, blocking protein synthesis and arresting the cell cycle in G1 phase. A wide body of evidence supports the role of mTOR in cell signaling related to cell growth and proliferation. Nevertheless, our recent findings have revealed that mTOR may be also involved in a signaling pathway activated by microtubule-damaging drugs, including taxol and nocodazole. It is known that agents affecting the integrity of microtubules activate apoptotic program by inducing phosphorylation and inactivation of the antiapoptotic Bcl-2 protein in G2-M phase. We have some evidence that mTOR is involved in the enzymatic cascade that, starting from damaged microtubules, induces downstream phosphorylation of the Bcl-2 protein. We also found that the level of activity of Akt can regulate Bcl-2 phosphorylation, through the mTOR kinase. Since mTOR activation by survival signals occurs in G1 phase and damaged microtubules activate proapoptotic signals in G2-M phase, we suggest that mTOR might mediate these two different pathways in two different phases of the cell cycle.
Insights
The mammalian target of rapamycin (mTOR) pathway regulates cell growth and protein synthesis. New findings suggest mTOR also mediates signals from microtubule-damaging drugs, potentially linking cell survival and death pathways across different cell cycle phases.
Area of Science:
- Cell Biology
- Molecular Signaling
- Cancer Research
Background:
- The mammalian target of rapamycin (mTOR) is a key regulator of cell growth, protein synthesis, and ribosome biogenesis.
- mTOR functions within the PI3K/Akt pathway, responding to nutrients and growth factors to control translation machinery.
- Rapamycin inhibits mTOR, impacting cell cycle progression and protein synthesis, and is used as an immunosuppressant and in cancer therapy.
Purpose of the Study:
- To investigate the potential role of mTOR in signaling pathways activated by microtubule-damaging agents.
- To explore the involvement of mTOR in the phosphorylation and inactivation of the antiapoptotic Bcl-2 protein.
- To determine if Akt kinase activity regulates Bcl-2 phosphorylation via mTOR in response to microtubule damage.
Main Methods:
- Utilized microtubule-damaging drugs (e.g., taxol, nocodazole) to induce cellular stress.
- Examined the phosphorylation status of Bcl-2 protein.
- Assessed the activity of mTOR and Akt kinases in response to these treatments.
Main Results:
- Evidence suggests mTOR is involved in the signaling cascade initiated by damaged microtubules, leading to Bcl-2 phosphorylation.
- Akt kinase activity was found to regulate Bcl-2 phosphorylation through the mTOR kinase.
- mTOR activation by survival signals occurs in G1 phase, while microtubule damage triggers pro-apoptotic signals in G2-M phase.
Conclusions:
- mTOR may act as a mediator connecting distinct cell cycle pathways.
- The study proposes that mTOR bridges survival signaling in G1 and apoptosis induction in G2-M phase.
- These findings reveal a novel role for mTOR in integrating cell growth and cell death signals.
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