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.

Redox Biology
|December 21, 2023
PubMed

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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