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Published on: June 25, 2014
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.
Aims/Hypothesis:
Mechanistic target of rapamycin complex 1 (mTORC1) is a master regulator of nutritional status at the cellular and organismic level. While mTORC1 mediates beta cell growth and expansion, its hyperactivation has been observed in pancreatic islets from animal models of type 2 diabetes and leads to beta cell loss. We sought to determine whether such mTORC1 activation occurs in humans with type 2 diabetes or in metabolically stressed human islets and whether mTORC1 blockade can restore beta cell function of diabetic islets.
Methods:
Human islets isolated from non-diabetic controls and individuals with type 2 diabetes, as well as human islets and INS-1E cells exposed to increased glucose (22.2 mmol/l), were examined for mTORC1/2 activity by western blotting analysis of phosphorylation of mTORC1 downstream targets ribosomal protein S6 kinase 1 (S6K1), S6 and eukaryotic translation initiation factor 4E binding protein 1 (4E-BP1) and mTORC2 downstream targets Akt and N-myc downstream regulated 1 (NDRG1). mTORC1/2 complexes' integrity was assessed by immunoprecipitation and subsequent western blot analysis. Cell-type specific expression of activated mTORC1 in human islets was examined by immunostaining of pS6 (Ser 235/236) in human islet sections. Beta cell function was measured by glucose-stimulated insulin secretion (GSIS).
Results:
While mTORC2 signalling was diminished, mTORC1 activity was markedly increased in islets from patients with type 2 diabetes and in islets and beta cells exposed to increased glucose concentrations. Under high-glucose conditions in metabolically stressed human islets, we identified a reciprocal regulation of different mTOR complexes, with functional upregulation of mTORC1 and downregulation of mTORC2. pS6 immunostaining showed beta cell-specific upregulation of mTORC1 in islets isolated from patients with type 2 diabetes. Inhibition of mTORC1-S6K1 signalling improved GSIS and restored mTORC2 activity in islets from patients with type 2 diabetes as well as in islets isolated from diabetic db/db mice and mice fed a high-fat/high-sucrose diet.
Conclusions/Interpretation:
Our data show the aberrant mTORC1 activity in islets from patients with type 2 diabetes, in human islets cultured under diabetes-associated increased glucose conditions and in diabetic mouse islets. This suggests that elevated mTORC1 activation is a striking pathogenic hallmark of islets in type 2 diabetes, contributing to impaired beta cell function and survival in the presence of metabolic stress.
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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