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Updated: Apr 30, 2026

High-resolution Respirometry to Measure Mitochondrial Function of Intact Beta Cells in the Presence of Natural Compounds
Published on: January 23, 2018
JunB protects β-cells from lipotoxicity via the XBP1-AKT pathway
D A Cunha1, E N Gurzov1, N Naamane1
1Laboratory of Experimental Medicine and ULB Center of Diabetes Research, Université Libre de Bruxelles, Brussels, Belgium.
Abstract:
Diets rich in saturated fats may contribute to the loss of pancreatic β-cells in type 2 diabetes. JunB, a member of the activating protein 1 (AP-1) transcription factor family, promotes β-cell survival and mediates part of the beneficial effects of GLP-1 agonists. In this study we interrogated the molecular mechanisms involved in JunB-mediated β-cell protection from lipotoxicity. The saturated fatty acid palmitate decreased JunB expression, and this loss may contribute to β-cell apoptosis, as overexpression of JunB protected cells from lipotoxicity. Array analysis of JunB-deficient β-cells identified a gene expression signature of a downregulated endoplasmic reticulum (ER) stress response and inhibited AKT signaling. JunB stimulates XBP1 expression via the transcription factor c/EBPδ during ER stress, and forced expression of XBP1s rescued the viability of JunB-deficient cells, constituting an important antiapoptotic mechanism. JunB silencing inhibited AKT activation and activated the proapoptotic Bcl-2 protein BAD via its dephosphorylation. BAD knockdown reversed lipotoxic β-cell death potentiated by JunB siRNA. Interestingly, XBP1s links JunB and AKT signaling as XBP1 knockdown also reduced AKT phosphorylation. GLP-1 agonists induced cAMP-dependent AKT phosphorylation leading to β-cell protection against palmitate-induced apoptosis. JunB and XBP1 knockdown or IRE1 inhibition decreased AKT activation by cAMP, leading to β-cell apoptosis. In conclusion, JunB modulates the β-cell ER stress response and AKT signaling via the induction of XBP1s. The activation of the JunB gene network and the crosstalk between the ER stress and AKT pathway constitute a crucial defense mechanism by which GLP-1 agonists protect against lipotoxic β-cell death. These findings elucidate novel β-cell-protective signal transduction in type 2 diabetes.
Insights
JunB transcription factor protects pancreatic beta cells from saturated fat-induced death by regulating ER stress and AKT signaling. This pathway is crucial for GLP-1 agonists
Area of Science:
- Molecular Biology
- Cell Biology
- Endocrinology
Background:
- Diets high in saturated fats are linked to type 2 diabetes and pancreatic beta-cell loss.
- JunB, an AP-1 transcription factor, is vital for beta-cell survival and mediates GLP-1 agonist benefits.
Purpose of the Study:
- To investigate the molecular mechanisms of JunB-mediated beta-cell protection against lipotoxicity.
- To elucidate the role of JunB in the endoplasmic reticulum (ER) stress response and AKT signaling pathways.
Main Methods:
- Palmitate treatment to induce lipotoxicity in beta-cells.
- JunB and XBP1 knockdown/overexpression studies.
- Gene expression analysis (arrays).
- Western blotting for protein activation (AKT, BAD).
Main Results:
- Palmitate reduced JunB expression, leading to beta-cell apoptosis; JunB overexpression protected cells.
- JunB regulates ER stress response and AKT signaling, partly via XBP1s induction.
- JunB and XBP1s are essential for GLP-1 agonist-mediated AKT activation and beta-cell protection against lipotoxicity.
Conclusions:
- JunB protects pancreatic beta-cells from lipotoxicity by modulating ER stress and AKT signaling through XBP1s.
- The JunB-XBP1s-AKT axis is a key mechanism for GLP-1 agonist-induced beta-cell protection in type 2 diabetes.
- These findings reveal novel signaling pathways involved in beta-cell survival in type 2 diabetes.
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