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High-resolution Respirometry to Measure Mitochondrial Function of Intact Beta Cells in the Presence of Natural Compounds
Published on: January 23, 2018
Mitochondrial aldehyde dehydrogenase-2 coordinates the hydrogen sulfide - AMPK axis to attenuate high glucose-induced
Udayakumar Karunakaran1, Suma Elumalai1, Seung Min Chung2
1Innovative Center for Aging Research, Yeungnam University Medical Center, Daegu, Republic of Korea.
Abstract:
Progression of β-cell loss in diabetes mellitus is significantly influenced by persistent hyperglycemia. At the cellular level, a number of signaling cascades affect the expression of apoptotic genes, ultimately resulting in β-cell failure; these cascades have not been elucidated. Mitochondrial aldehyde dehydrogenase-2 (ALDH2) plays a central role in the detoxification of reactive aldehydes generated from endogenous and exogenous sources and protects against mitochondrial deterioration in cells. Here we report that under diabetogenic conditions, ALDH2 is strongly inactivated in β-cells through CDK5-dependent glutathione antioxidant imbalance by glucose-6-phosphate dehydrogenase (G6PD) degradation. Intriguingly, CDK5 inhibition strengthens mitochondrial antioxidant defense through ALDH2 activation. Mitochondrial ALDH2 activation selectively preserves β-cells against high-glucose-induced dysfunction by activating AMPK and Hydrogen Sulfide (H2S) signaling. This is associated with the stabilization and enhancement of the activity of G6PD by SIRT2, a cytoplasmic NAD+-dependent deacetylase, and is thereby linked to an elevation in the GSH/GSSG ratio, which leads to the inhibition of mitochondrial dysfunction under high-glucose conditions. Furthermore, treatment with NaHS, an H2S donor, selectively preserves β-cell function by promoting ALDH2 activity, leading to the inhibition of lipid peroxidation by high-glucose concentrations. Collectively, our results provide the first direct evidence that ALDH2 activation enhances H2S-AMPK-G6PD signaling, leading to improved β-cell function and survival under high-glucose conditions via the glutathione redox balance.
Insights
Persistent hyperglycemia drives beta-cell loss in diabetes. Activating mitochondrial aldehyde dehydrogenase-2 (ALDH2) preserves beta-cells by enhancing antioxidant defenses and key signaling pathways.
Area of Science:
- Cellular and Molecular Biology
- Endocrinology
- Diabetes Research
Background:
- Persistent hyperglycemia is a key driver of beta-cell loss and failure in diabetes mellitus.
- Signaling cascades leading to apoptotic gene expression and beta-cell dysfunction remain incompletely understood.
- Mitochondrial aldehyde dehydrogenase-2 (ALDH2) is crucial for detoxifying reactive aldehydes and preventing mitochondrial damage.
Purpose of the Study:
- To elucidate the signaling cascades involved in high-glucose-induced beta-cell failure.
- To investigate the role of mitochondrial ALDH2 in protecting beta-cells from diabetic conditions.
- To explore therapeutic strategies targeting ALDH2 for preserving beta-cell function.
Main Methods:
- Investigated ALDH2 inactivation in beta-cells under diabetogenic conditions.
- Examined the effects of CDK5 inhibition and SIRT2 activity on ALDH2 and G6PD.
- Assessed the impact of H2S signaling and NaHS treatment on beta-cell function and lipid peroxidation.
Main Results:
- High glucose inactivates ALDH2 in beta-cells via CDK5-dependent G6PD degradation and antioxidant imbalance.
- CDK5 inhibition and SIRT2 activation restore ALDH2 activity, enhancing G6PD stabilization and the GSH/GSSG ratio.
- Mitochondrial ALDH2 activation preserves beta-cells by activating AMPK and H2S signaling, inhibiting lipid peroxidation.
Conclusions:
- ALDH2 inactivation contributes to high-glucose-induced beta-cell dysfunction and loss.
- Targeting ALDH2 activation, potentially through H2S-AMPK-G6PD signaling, preserves beta-cell function and survival.
- Restoring glutathione redox balance via ALDH2 activation offers a promising therapeutic avenue for diabetes.
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