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Published on: October 23, 2018
Dual phosphorylation of Sin1 at T86 and T398 negatively regulates mTORC2 complex integrity and activity
Pengda Liu1, Jianping Guo, Wenjian Gan
1Department of Pathology, Beth Israel Deaconess Medical Center, Harvard Medical School, Boston, MA, 02115, USA.
Abstract:
Mammalian target of rapamycin (mTOR) plays essential roles in cell proliferation, survival and metabolism by forming at least two functional distinct multi-protein complexes, mTORC1 and mTORC2. External growth signals can be received and interpreted by mTORC2 and further transduced to mTORC1. On the other hand, mTORC1 can sense inner-cellular physiological cues such as amino acids and energy states and can indirectly suppress mTORC2 activity in part through phosphorylation of its upstream adaptors, IRS-1 or Grb10, under insulin or IGF-1 stimulation conditions. To date, upstream signaling pathways governing mTORC1 activation have been studied extensively, while the mechanisms modulating mTORC2 activity remain largely elusive. We recently reported that Sin1, an essential mTORC2 subunit, was phosphorylated by either Akt or S6K in a cellular context-dependent manner. More importantly, phosphorylation of Sin1 at T86 and T398 led to a dissociation of Sin1 from the functional mTORC2 holo-enzyme, resulting in reduced Akt activity and sensitizing cells to various apoptotic challenges. Notably, an ovarian cancer patient-derived Sin1-R81T mutation abolished Sin1-T86 phosphorylation by disrupting the canonical S6K-phoshorylation motif, thereby bypassing Sin1-phosphorylation-mediated suppression of mTORC2 and leading to sustained Akt signaling to promote tumorigenesis. Our work therefore provided physiological and pathological evidence to reveal the biological significance of Sin1 phosphorylation-mediated suppression of the mTOR/Akt oncogenic signaling, and further suggested that misregulation of this process might contribute to Akt hyper-activation that is frequently observed in human cancers.
Insights
Mammalian target of rapamycin (mTOR) complex 2 (mTORC2) activity is regulated by Sin1 phosphorylation. A mutation in Sin1 bypasses this suppression, promoting cancer by sustaining Akt signaling.
Area of Science:
- Cellular signaling pathways
- Cancer biology
- Molecular mechanisms of cell regulation
Background:
- Mammalian target of rapamycin (mTOR) signaling is crucial for cell growth, survival, and metabolism.
- mTOR exists in two complexes, mTORC1 and mTORC2, with distinct functions and regulatory mechanisms.
- While mTORC1 regulation is well-studied, upstream pathways controlling mTORC2 activity remain largely unknown.
Purpose of the Study:
- To investigate the mechanisms regulating mTORC2 activity.
- To elucidate the role of Sin1 phosphorylation in modulating mTORC2 function.
- To explore the implications of Sin1 dysregulation in cancer development.
Main Methods:
- Investigated Sin1 phosphorylation by Akt and S6K in various cellular contexts.
- Analyzed the impact of Sin1 phosphorylation on mTORC2 complex integrity and Akt activity.
- Studied an ovarian cancer-derived Sin1 mutation (R81T) to assess its effect on Sin1 phosphorylation and tumorigenesis.
Main Results:
- Sin1 phosphorylation at T86 and T398 by Akt or S6K causes Sin1 dissociation from mTORC2, reducing Akt activity and increasing apoptosis sensitivity.
- The Sin1-R81T mutation prevents T86 phosphorylation, leading to sustained mTORC2 activity and enhanced Akt signaling.
- This sustained Akt signaling, driven by the Sin1 mutation, promotes tumorigenesis in ovarian cancer.
Conclusions:
- Sin1 phosphorylation is a critical mechanism for suppressing mTORC2 activity and Akt signaling.
- Dysregulation of Sin1 phosphorylation, as seen in the R81T mutation, contributes to Akt hyper-activation and cancer.
- Targeting Sin1 phosphorylation may offer a therapeutic strategy for cancers with hyperactive Akt signaling.
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