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Alcohol-induced modulation of rictor and mTORC2 activity in C2C12 myoblasts
Ly Q Hong-Brown1, C Randell Brown, Maithili Navaratnarajah
1Department of Cellular and Molecular Physiology, Penn State College of Medicine, Hershey, PA 17033, USA. lqh10@psu.edu
Background:
The mammalian target of rapamycin (mTOR) kinase controls cell growth, proliferation, and metabolism through 2 distinct multiprotein complexes, mTORC1 and mTORC2. We reported that alcohol (EtOH) inhibits mTORC1 activity and protein synthesis in C2C12 myoblasts. However, the role that mTORC2 plays in this process has not been elucidated. In this study, we investigated whether mTORC2 functions as part of a feedback regulator in response to EtOH, acting to maintain the balance between the functions of Akt, mTORC2, and mTORC1.
Methods:
C2C12 myoblasts were incubated with EtOH for 18 to 24 hours. Levels of various mTORC2 proteins and mRNA were assessed by immunoblotting and real-time PCR, respectively, while protein-protein interactions were determined by immunoprecipitation and immunoblotting. An in vitro mTORC2 kinase activity assay was performed using Akt as a substrate. The rate of protein synthesis was determined by (35) S-methionine/cysteine incorporation into cellular protein.
Results:
EtOH (100 mM) increased the protein and mRNA levels of the mTORC2 components rictor, mSin1, proline-rich repeat protein 5, and Deptor. There was also an increased association of these proteins with mTOR. EtOH increased the in vitro kinase activity of mTORC2, and this was correlated with decreased binding of rictor with 14-3-3 and Deptor. Reduced rictor phosphorylation at T1135 by EtOH was most likely due to decreased S6K1 activity. Knockdown of rictor elevated mTORC1 activity, as indicated by increased S6K1 phosphorylation and protein synthesis. Likewise, there were decreased amounts and/or phosphorylation levels of various mTORC1 and mTORC2 components including raptor, proline-rich Akt substrate 40 kDa, mSin1, Deptor, and GβL. Activated PP2A was associated with decreased Akt and eukaryotic elongation factor 2 phosphorylation. Collectively, our results provide evidence of a homeostatic balance between the 2 mTOR complexes following EtOH treatments in myoblasts.
Conclusions:
EtOH increased the activity of mTORC2 by elevating levels of various components and their interaction with mTOR. Decreased rictor phosphorylation at T1135 acts as mTORC1-dependent feedback mechanisms, functioning in addition to the insulin receptor substrate-I/PI3K signaling pathway to regulate protein synthesis.
Insights
Alcohol exposure increases mTORC2 activity in myoblasts, revealing a feedback mechanism involving rictor phosphorylation that balances mTORC1 and mTORC2 signaling to regulate protein synthesis.
Area of Science:
- Cellular biology
- Molecular signaling
- Biochemistry
Background:
- The mammalian target of rapamycin (mTOR) pathway regulates cell growth and metabolism via mTORC1 and mTORC2 complexes.
- Alcohol (EtOH) is known to inhibit mTORC1 activity and protein synthesis in C2C12 myoblasts.
- The specific role of mTORC2 in response to EtOH remains unclear.
Purpose of the Study:
- To investigate the role of mTORC2 in EtOH-induced cellular responses.
- To determine if mTORC2 acts as a feedback regulator in EtOH-treated myoblasts.
- To elucidate the balance between Akt, mTORC2, and mTORC1 signaling under EtOH exposure.
Main Methods:
- C2C12 myoblasts were treated with EtOH (100 mM) for 18–24 hours.
- mTORC2 component levels and interactions were analyzed using immunoblotting and immunoprecipitation.
- mTORC2 kinase activity was assessed in vitro with Akt as a substrate.
- Protein synthesis rates were measured via (35)S-methionine/cysteine incorporation.
Main Results:
- EtOH increased protein and mRNA levels of mTORC2 components (rictor, mSin1, PRR5, Deptor) and their association with mTOR.
- Ethanol enhanced mTORC2 kinase activity, correlated with reduced rictor binding to 14-3-3 and Deptor.
- Knockdown of rictor increased mTORC1 activity, indicating a feedback loop.
- EtOH treatment led to decreased levels/phosphorylation of various mTORC1 and mTORC2 components and affected Akt signaling.
Conclusions:
- EtOH elevates mTORC2 activity by increasing component levels and interactions.
- Decreased rictor phosphorylation at T1135 serves as an mTORC1-dependent feedback mechanism.
- This feedback pathway, alongside IRS-I/PI3K signaling, regulates protein synthesis in response to alcohol.
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