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Aberrant REDD1-mTORC1 responses to insulin in skeletal muscle from Type 2 diabetics
David L Williamson1, Cory M Dungan2, Abeer M Mahmoud3
1Department of Exercise and Nutrition Sciences, School of Public Health and Health Professions, University at Buffalo, Buffalo, New York; and davidwil@buffalo.edu.
Abstract:
The objective of this study was to establish whether alterations in the REDD1-mTOR axis underlie skeletal muscle insensitivity to insulin in Type 2 diabetic (T2D), obese individuals. Vastus lateralis muscle biopsies were obtained from lean, control and obese, T2D subjects under basal and after a 2-h hyperinsulinemic (40 mU·m(-2)·min(-1))-euglycemic (5 mM) clamp. Muscle lysates were examined for total REDD1, and phosphorylated Akt, S6 kinase 1 (S6K1), 4E-BP1, ERK1/2, and MEK1/2 via Western blot analysis. Under basal conditions [(-) insulin], T2D muscle exhibited higher S6K1 and ERK1/2 and lower 4E-BP1 phosphorylation (P < 0.05), as well as elevations in blood cortisol, glucose, insulin, glycosylated hemoglobin (P < 0.05) vs. lean controls. Following insulin infusion, whole body glucose disposal rates (GDR; mg/kg/min) were lower (P < 0.05) in the T2D vs. the control group. The basal-to-insulin percent change in REDD1 expression was higher (P < 0.05) in muscle from the T2D vs. the control group. Whereas, the basal-to-insulin percent change in muscle Akt, S6K1, ERK1/2, and MEK1/2 phosphorylation was significantly lower (P < 0.05) in the T2D vs. the control group. Findings from this study propose a REDD1-regulated mechanism in T2D skeletal muscle that may contribute to whole body insulin resistance and may be a target to improve insulin action in insulin-resistant individuals.
Insights
Type 2 diabetes (T2D) and obesity impair skeletal muscle insulin sensitivity due to REDD1 pathway alterations. Targeting REDD1 may improve insulin action in insulin-resistant individuals.
Area of Science:
- Endocrinology
- Metabolic Disorders
- Molecular Biology
Background:
- Skeletal muscle insulin resistance is a hallmark of Type 2 diabetes (T2D) and obesity.
- The REDD1-mTOR signaling pathway's role in T2D-associated insulin insensitivity remains unclear.
Purpose of the Study:
- To investigate if REDD1-mTOR axis dysregulation contributes to skeletal muscle insulin resistance in obese, T2D individuals.
Main Methods:
- Vastus lateralis muscle biopsies from lean controls and obese T2D subjects.
- Analysis of REDD1, phosphorylated Akt, S6K1, 4E-BP1, ERK1/2, and MEK1/2 via Western blot.
- Hyperinsulinemic-euglycemic clamp to assess whole-body glucose disposal rates (GDR).
Main Results:
- T2D muscle showed altered basal phosphorylation of S6K1, ERK1/2, and 4E-BP1.
- Obese T2D subjects exhibited lower GDR post-insulin infusion.
- Increased REDD1 expression and reduced Akt/S6K1/ERK1/2 phosphorylation occurred in T2D muscle after insulin stimulation.
Conclusions:
- A REDD1-regulated mechanism in T2D skeletal muscle may drive insulin resistance.
- The REDD1 pathway presents a potential therapeutic target for enhancing insulin sensitivity.
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