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CBAP regulates the function of Akt-associated TSC protein complexes to modulate mTORC1 signaling
Wei-Ting Liao1, Yun-Jung Chiang2, Hsin-Fang Yang-Yen3
1Institute of Molecular Medicine, College of Medicine, National Taiwan University, Taipei, Taiwan; Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan.
Abstract:
The Akt-Rheb-mTORC1 pathway plays a crucial role in regulating cell growth, but the mechanisms underlying the activation of Rheb-mTORC1 by Akt remain unclear. In our previous study, we found that CBAP was highly expressed in human T-ALL cells and primary tumors, and its deficiency led to reduced phosphorylation of TSC2/S6K1 signaling proteins as well as impaired cell proliferation and leukemogenicity. We also demonstrated that CBAP was required for Akt-mediated TSC2 phosphorylation in vitro. In response to insulin, CBAP was also necessary for the phosphorylation of TSC2/S6K1 and the dissociation of TSC2 from the lysosomal membrane. Here we report that CBAP interacts with AKT and TSC2, and knockout of CBAP or serum starvation leads to an increase in TSC1 in the Akt/TSC2 immunoprecipitation complexes. Lysosomal-anchored CBAP was found to override serum starvation and promote S6K1 and 4EBP1 phosphorylation and c-Myc expression in a TSC2-dependent manner. Additionally, recombinant CBAP inhibited the GAP activity of TSC2 complexes in vitro, leading to increased Rheb-GTP loading, likely due to the competition between TSC1 and CBAP for binding to the HBD domain of TSC2. Overexpression of the N26 region of CBAP, which is crucial for binding to TSC2, resulted in a decrease in mTORC1 signaling and an increase in TSC1 association with the TSC2/AKT complex, ultimately leading to increased GAP activity toward Rheb and impaired cell proliferation. Thus, we propose that CBAP can modulate the stability of TSC1-TSC2 as well as promote the translocation of TSC1/TSC2 complexes away from lysosomes to regulate Rheb-mTORC1 signaling.
Insights
CBAP protein regulates cell growth by interacting with AKT and TSC2, influencing the Rheb-mTORC1 pathway. Its action impacts TSC1-TSC2 stability and lysosomal translocation, affecting cell proliferation.
Area of Science:
- Cell Biology
- Molecular Biology
- Oncology
Background:
- The Akt-Rheb-mTORC1 pathway is vital for cell growth regulation.
- Mechanisms of Akt-mediated Rheb-mTORC1 activation are not fully understood.
- CBAP is highly expressed in T-ALL and influences TSC2/S6K1 signaling.
Purpose of the Study:
- To elucidate the role of CBAP in Akt-mediated Rheb-mTORC1 pathway activation.
- To investigate the interaction of CBAP with AKT and TSC2.
- To determine how CBAP affects TSC1-TSC2 complex stability and localization.
Main Methods:
- Immunoprecipitation assays to study protein interactions (CBAP, AKT, TSC2).
- Western blotting to assess protein phosphorylation (TSC2, S6K1, 4EBP1) and expression (c-Myc).
- In vitro assays to measure GTPase-activating protein (GAP) activity of TSC2 complexes.
- Cell proliferation assays.
Main Results:
- CBAP interacts with AKT and TSC2, and its absence increases TSC1 in Akt/TSC2 complexes.
- Lysosomal-anchored CBAP promotes S6K1, 4EBP1 phosphorylation, and c-Myc expression via TSC2.
- Recombinant CBAP inhibits TSC2 GAP activity, increasing Rheb-GTP loading.
- CBAP N26 region overexpression decreases mTORC1 signaling and cell proliferation.
Conclusions:
- CBAP modulates TSC1-TSC2 stability and lysosomal translocation to regulate Rheb-mTORC1 signaling.
- CBAP acts as a negative regulator of TSC2 GAP activity.
- CBAP plays a critical role in controlling cell proliferation through the Akt-Rheb-mTORC1 pathway.
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