Related Experiment Video
Updated: Jun 20, 2026

High-resolution Respirometry to Measure Mitochondrial Function of Intact Beta Cells in the Presence of Natural Compounds
Published on: January 23, 2018
Silencing mitogen-activated protein 4 kinase 4 (MAP4K4) protects beta cells from tumor necrosis factor-alpha-induced
Karim Bouzakri1, Pascale Ribaux1, Philippe A Halban1
1Department of Genetic Medicine and Development, University Medical Center, University of Geneva, CH-1211 Geneva 4, Switzerland.
Abstract:
Obesity and type 2 diabetes present partially overlapping phenotypes with systemic inflammation as a common feature, raising the hypothesis that elevated cytokine levels may contribute to peripheral insulin resistance as well as the decreased beta cell functional mass observed in type 2 diabetes. In healthy humans, TNF-alpha infusion induces skeletal muscle insulin resistance. We now explore the impact of TNF-alpha on primary beta cell function and the underlying signaling pathways. Human and rat primary beta cells were sorted by FACS and cultured for 24 h +/- 20 ng/ml TNF-alpha to explore the impact on apoptosis, proliferation, and short-term insulin secretion (1 h, 2.8 mm glucose followed by 1 h, 16.7 mm glucose at the end of the 24-h culture period) as well as key signaling protein phosphorylation and expression. Prior exposure to TNF-alpha for 24 h inhibits glucose-stimulated insulin secretion from primary beta cells. This is associated with a decrease in glucose-stimulated phosphorylation of key proteins in the insulin signaling pathway including Akt, AS160, and other Akt substrates, ERK as well as the insulin receptor. Strikingly, TNF-alpha treatment decreased IRS-2 protein level by 46 +/- 7% versus control, although mRNA expression was unchanged. While TNF-alpha treatment increased MAP4K4 mRNA expression by 33 +/- 5%, knockdown of MAP4K4 by siRNA-protected beta cells against the detrimental effects of TNF-alpha on both insulin secretion and signaling. We thus identify MAP4K4 as a key upstream mediator of TNF-alpha action on the beta cell, making it a potential therapeutic target for preservation of beta cell function in type 2 diabetes.
Insights
Tumor necrosis factor-alpha (TNF-alpha) impairs beta cell function and insulin secretion. MAP4K4 is identified as a key mediator, offering a potential therapeutic target for type 2 diabetes.
Area of Science:
- Endocrinology
- Molecular Biology
- Metabolic Diseases
Background:
- Obesity and type 2 diabetes share inflammatory pathways.
- Systemic inflammation and elevated cytokines may drive insulin resistance and beta cell dysfunction.
- Tumor necrosis factor-alpha (TNF-alpha) is implicated in insulin resistance.
Purpose of the Study:
- To investigate the effects of TNF-alpha on primary beta cell function and signaling pathways.
- To identify molecular mediators of TNF-alpha's impact on beta cells.
Main Methods:
- Primary human and rat beta cells were cultured with TNF-alpha.
- Assessed apoptosis, proliferation, insulin secretion, and protein phosphorylation/expression.
- Utilized flow cytometry, siRNA knockdown of MAP4K4, and Western blotting.
Main Results:
- TNF-alpha inhibited glucose-stimulated insulin secretion and phosphorylation of key insulin signaling proteins (Akt, AS160, ERK, insulin receptor).
- TNF-alpha reduced IRS-2 protein levels without altering mRNA.
- TNF-alpha increased MAP4K4 mRNA; MAP4K4 knockdown protected beta cells from TNF-alpha's detrimental effects.
Conclusions:
- TNF-alpha impairs beta cell function and insulin signaling.
- MAP4K4 is a critical upstream mediator of TNF-alpha's effects on beta cells.
- MAP4K4 represents a potential therapeutic target for preserving beta cell function in type 2 diabetes.
Related Concept Videos
PI3K/mTOR/AKT Signaling Pathway
Dipeptidyl Peptidase 4 Inhibitors
MAPK Signaling Cascades
Insulin: The Receptor and Signaling Pathways
Inhibition of Cdk Activity
Type I Diabetes II: Pathophysiology
