Reciprocal regulation of mTOR complexes in pancreatic islets from humans with type 2 diabetes

Ting Yuan1, Sahar Rafizadeh1, Kanaka Durga Devi Gorrepati1

  • 1Islet Biology Laboratory, Centre for Biomolecular Interactions Bremen, University of Bremen, Leobener Straße NW2, Room B2080, 28359, Bremen, Germany.

Diabetologia
|December 23, 2016
PubMed
Abstract

Insights

Hyperactivated mechanistic target of rapamycin complex 1 (mTORC1) is linked to type 2 diabetes. Inhibiting mTORC1 signaling improved beta cell function in diabetic models, suggesting it

Area of Science:

  • Cellular and molecular biology
  • Endocrinology
  • Metabolic diseases

Background:

  • Mechanistic target of rapamycin complex 1 (mTORC1) regulates cellular and organismic nutritional status.
  • mTORC1 promotes beta cell growth but its hyperactivation is implicated in type 2 diabetes and beta cell loss.

Purpose of the Study:

  • To investigate mTORC1 activation in human type 2 diabetes islets and metabolically stressed islets.
  • To determine if blocking mTORC1 can restore function in diabetic beta cells.

Main Methods:

  • Western blotting to assess mTORC1/2 activity via downstream target phosphorylation (S6K1, S6, 4E-BP1, Akt, NDRG1).
  • Immunoprecipitation to evaluate mTORC1/2 complex integrity.
  • Immunostaining for beta cell-specific mTORC1 activation (pS6).
  • Glucose-stimulated insulin secretion (GSIS) assays to measure beta cell function.

Main Results:

  • mTORC1 activity was markedly increased, while mTORC2 signaling diminished in type 2 diabetes islets and high-glucose stressed islets.
  • Beta cell-specific upregulation of mTORC1 was confirmed by pS6 immunostaining in human type 2 diabetes islets.
  • Inhibition of mTORC1-S6K1 signaling improved GSIS and restored mTORC2 activity in diabetic human and mouse islets.

Conclusions:

  • Aberrant mTORC1 activity is a key feature of islets in type 2 diabetes and under metabolic stress.
  • Elevated mTORC1 contributes to impaired beta cell function and survival in type 2 diabetes.
  • Targeting mTORC1 signaling offers a potential therapeutic strategy for type 2 diabetes.

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