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Published on: April 13, 2015
mTORC2 is required for proliferation and survival of TSC2-null cells
Elena A Goncharova1, Dmitry A Goncharov, Hua Li
1Pulmonary, Allergy and Critical Care Division, Department of Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.
Abstract:
Mutational inactivation of the tumor suppressor tuberous sclerosis complex 2 (TSC2) constitutively activates mTORC1, increases cell proliferation, and induces the pathological manifestations observed in tuberous sclerosis (TS) and in pulmonary lymphangioleiomyomatosis (LAM). While the role of mTORC1 in TSC2-dependent growth has been extensively characterized, little is known about the role of mTORC2. Our data demonstrate that mTORC2 modulates TSC2-null cell proliferation and survival through RhoA GTPase and Bcl2 proteins. TSC2-null cell proliferation was inhibited not only by reexpression of TSC2 or small interfering RNA (siRNA)-induced downregulation of Rheb, mTOR, or raptor, but also by siRNA for rictor. Increased RhoA GTPase activity and P-Ser473 Akt were inhibited by siRNA for rictor. Importantly, constitutively active V14RhoA reversed growth inhibition induced by siRNA for rictor, siRNA TSC1, reexpression of TSC2, or simvastatin. While siRNA for RhoA had a modest effect on growth inhibition, downregulation of RhoA markedly increased TSC2-null cell apoptosis. Inhibition of RhoA activity downregulated antiapoptotic Bcl2 and upregulated proapoptotic Bim, Bok, and Puma. In vitro and in vivo, simvastatin alone or in combination with rapamycin inhibited cell growth and induced TSC2-null cell apoptosis, abrogated TSC2-null tumor growth, improved animal survival, and prevented tumor recurrence by inhibiting cell growth and promoting apoptosis. Our data demonstrate that mTORC2-dependent activation of RhoA is required for TSC2-null cell growth and survival and suggest that targeting both mTORC2 and mTORC1 by a combination of proapoptotic simvastatin and cytostatic rapamycin shows promise for combinational therapeutic intervention in diseases with TSC2 dysfunction.
Insights
Mutational inactivation of the tumor suppressor TSC2 activates mTORC1, driving cell proliferation in tuberous sclerosis (TS) and LAM. This study reveals mTORC2
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Mutational inactivation of the tumor suppressor tuberous sclerosis complex 2 (TSC2) leads to constitutive mTORC1 activation, promoting cell proliferation and disease pathology in tuberous sclerosis (TS) and pulmonary lymphangioleiomyomatosis (LAM).
- The role of mTORC1 in TSC2-dependent growth is well-established, but the function of mTORC2 in these contexts remains largely unexplored.
Purpose of the Study:
- To investigate the role of mTORC2 in TSC2-null cell proliferation and survival.
- To elucidate the downstream signaling pathways, including RhoA GTPase and Bcl2 family proteins, modulated by mTORC2 in TSC2-deficient cells.
Main Methods:
- Utilized small interfering RNA (siRNA) to downregulate key proteins including TSC2, Rheb, mTOR, raptor, rictor, and RhoA.
- Employed expression of constitutively active V14RhoA to assess its impact on cell growth.
- Investigated the effects of simvastatin and rapamycin, alone and in combination, on TSC2-null cell growth, apoptosis, and tumor development in vitro and in vivo.
Main Results:
- mTORC2, through rictor, modulates TSC2-null cell proliferation and survival via RhoA GTPase and Bcl2 proteins.
- siRNA targeting rictor inhibited cell proliferation and decreased RhoA GTPase activity and Akt phosphorylation (P-Ser473 Akt).
- Simvastatin, alone or with rapamycin, inhibited TSC2-null cell growth, induced apoptosis, reduced tumor growth, and prevented recurrence.
Conclusions:
- mTORC2-dependent activation of RhoA is essential for the growth and survival of TSC2-null cells.
- Targeting both mTORC2 and mTORC1 with a combination of proapoptotic simvastatin and cytostatic rapamycin shows therapeutic potential for diseases characterized by TSC2 dysfunction.
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