Redox regulates mammalian target of rapamycin complex 1 (mTORC1) activity by modulating the TSC1/TSC2-Rheb GTPase

Sei Yoshida1, Sungki Hong, Tsukasa Suzuki

  • 1Life Sciences Institute, University of Michigan, Ann Arbor, Michigan 48109, USA.

Insights

Redox regulation of mTORC1 activity occurs through Rheb, not Rag GTPases. The TSC complex is crucial for this redox-sensitive mTORC1 control, independent of lysosomal localization.

Area of Science:

  • Cellular signaling pathways
  • Molecular mechanisms of cell regulation
  • Biochemistry and molecular biology

Background:

  • Mammalian target of rapamycin (mTOR) is central to cellular processes, existing as mTORC1 and mTORC2.
  • mTORC1 is influenced by nutrients and cellular redox, with prior studies suggesting redox-sensitive regulation.
  • The precise molecular mechanism of redox control over mTORC1 remains unclear.

Purpose of the Study:

  • To elucidate the molecular mechanism of redox-sensitive regulation of mTORC1 activity.
  • To investigate the role of Rheb and Rag GTPases in this process.
  • To determine the involvement of the TSC complex and lysosomal localization.

Main Methods:

  • Utilized cysteine oxidants and reducing agents to modulate cellular redox potential.
  • Assessed mTORC1 activity and Rheb GTP levels in wild-type and knockout mouse embryonic fibroblast cells (TSC1/2-/-, p18-/-).
  • Examined mTOR localization in response to redox modulation.

Main Results:

  • Redox-sensitive mTORC1 regulation occurs via Rheb, independent of Rag GTPases.
  • Cysteine oxidants increased Rheb GTP levels, activating mTORC1.
  • Modulation of redox potential did not affect mTORC1 activity in TSC1/2-deficient cells.
  • Redox regulation of mTORC1 is independent of the Ragulator·Rag complex and lysosomal localization.

Conclusions:

  • The TSC complex plays a critical role in redox-sensitive mTORC1 regulation.
  • mTORC1 can be activated independently of the lysosome upon TSC complex inhibition.
  • These findings reveal a novel mechanism for mTORC1 control by cellular redox state.

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