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A Murine Pancreatic Islet Cell-based Screening for Diabetogenic Environmental Chemicals
Published on: June 25, 2018
c-Abl tyrosine kinase inhibition attenuate oxidative stress-induced pancreatic β-Cell dysfunction via glutathione
Udayakumar Karunakaran1, Suma Elumalai1, Jun Sung Moon2
1Innovative Center for Aging Research, Yeungnam University Medical Center, Daegu, Republic of Korea.
Abstract:
Chronic oxidative stress, which is caused by aberrant non-receptor tyrosine kinase (c-Abl) signaling, plays a key role in the progression of β-cell loss in diabetes mellitus. Recent studies, however, have linked ferroptotic-like death to the β-cell loss in diabetes mellitus. Here, we report that oxidative stress-driven reduced/oxidized glutathione (GSH/GSSG) loss and proteasomal degradation of glutathione peroxidase 4 (GPX4) promote ferroptotic-like cell damage through increased lipid peroxidation. Mechanistically, treatment with GNF2, a non-ATP competitive c-Abl kinase inhibitor, selectively preserves β-cell function by inducing the orphan nuclear receptor estrogen-related receptor gamma (ERRγ). ERRγ-driven glutaminase 1 (GLS1) expression promotes the elevation of the GSH/GSSG ratio, and this increase leads to the inhibition of lipid peroxidation by GPX4. Strikingly, pharmacological inhibition of ERRγ represses the expression of GLS1 and reverses the GSH/GSSG ratio linked to mitochondrial dysfunction and increased lipid peroxidation mediated by GPX4 degradation. Inhibition of GLS1 suppresses the ERRγ agonist DY131-induced GSH/GSSG ratio linked to ferroptotic-like death owing to the loss of GPX4. Furthermore, immunohistochemical analysis showed enhanced ERRγ and GPX4 expression in the pancreatic islets of GNF2-treated mice compared to that in streptozotocin-treated mice. Altogether, our results provide the first evidence that the orphan nuclear receptor ERRγ-induced GLS1 expression augments the glutathione antioxidant system, and its downstream signaling leads to improved β-cell function and survival under oxidative stress conditions.
Insights
This study reveals that targeting aberrant c-Abl signaling with GNF2 preserves beta-cell function in diabetes by boosting the glutathione antioxidant system via ERRγ and GLS1, preventing ferroptosis.
Area of Science:
- Endocrinology
- Cell Biology
- Biochemistry
Background:
- Chronic oxidative stress contributes to beta-cell loss in diabetes mellitus.
- Ferroptosis-like cell death is increasingly linked to beta-cell dysfunction in diabetes.
Purpose of the Study:
- To investigate the role of aberrant c-Abl signaling and the glutathione system in ferroptosis-driven beta-cell loss.
- To explore the therapeutic potential of targeting c-Abl and its downstream pathways for preserving beta-cell function.
Main Methods:
- Utilized GNF2, a c-Abl kinase inhibitor, and pharmacological inhibition/activation of ERRγ and GLS1.
- Assessed beta-cell function, lipid peroxidation, glutathione levels (GSH/GSSG), and GPX4 expression.
- Employed immunohistochemistry in streptozotocin-induced diabetes mouse models.
Main Results:
- GNF2 treatment preserved beta-cell function by inducing ERRγ, which upregulated GLS1 expression.
- This ERRγ-GLS1 axis elevated the GSH/GSSG ratio, inhibited lipid peroxidation, and protected GPX4 from degradation.
- Inhibition of ERRγ or GLS1 reversed these protective effects, exacerbating ferroptosis.
Conclusions:
- The orphan nuclear receptor ERRγ, induced by c-Abl inhibition, plays a critical role in protecting beta-cells from oxidative stress and ferroptosis.
- Targeting the ERRγ-GLS1 pathway represents a promising therapeutic strategy for diabetes by augmenting the glutathione antioxidant system and preserving beta-cell survival.
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