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Published on: January 23, 2018
Mitochondrial ALDH2 improves ß-cell survival and function against doxorubicin-induced apoptosis by targeting CK2
Udayakumar Karunakaran1, Eun Yeong Ha2,3, Suma Elumalai1
1Institute of Medical Science, Yeungnam University College of Medicine, Daegu, Republic of Korea.
Aims:
The aim of this study was to better understand how the chemotherapy drug doxorubicin contributes to the development of β-cell dysfunction and to explore its relationship with mitochondrial aldehyde dehydrogenase-2 (ALDH2).
Materials And Methods:
In order to investigate this hypothesis, doxorubicin was administered to INS-1 cells, a rat insulinoma cell line, either with or without several target protein activators and inhibitors. ALDH2 activity was detected with a commercial kit and protein levels were determined with western blot. Mitochondrial ROS, membrane potential, and lipid ROS were determined by commercial fluorescent probes. The cell viability was measured by CCK-assay.
Results:
Exposure of INS-1 cells to doxorubicin decreased active insulin signaling resulting in elevated ALDH2 degradation, compared with control cells by the induction of acid sphingomyelinase mediated ceramide induction. Further, ceramide induction potentiated doxorubicin induced mitochondrial dysfunction. Treatment with the ALDH2 agonist, ALDA1, blocked doxorubicin-induced acid sphingomyelinase activation which significantly blocked ceramide induction and mitochondrial dysfunction mediated cell death. Treatment with the ALDH2 agonist, ALDA1, stimulated casein kinase-2 (CK2) mediated insulin signaling activation. CK2 silencing neutralized the function of ALDH2 in the doxorubicin treated INS-1 cells.
Conclusions:
Mitochondrial ALDH2 activation could inhibit the progression of doxorubicin induced pancreatic β-cell dysfunction by inhibiting the acid sphingomyelinase induction of ceramide, by regulating the activation of CK2 signaling. Our research lays the foundation of ALDH2 activation as a therapeutic target for the precise treatment of chemotherapy drug induced β-cell dysfunction.
Insights
Mitochondrial aldehyde dehydrogenase-2 (ALDH2) activation protects against doxorubicin-induced pancreatic β-cell dysfunction by inhibiting ceramide production and regulating insulin signaling. This suggests ALDH2 activation as a therapeutic target for chemotherapy side effects.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Doxorubicin, a common chemotherapy drug, can cause pancreatic β-cell dysfunction.
- Mitochondrial aldehyde dehydrogenase-2 (ALDH2) plays a role in cellular protection and signaling.
- The precise mechanisms linking doxorubicin to β-cell dysfunction and ALDH2 are not fully understood.
Purpose of the Study:
- To investigate how doxorubicin induces β-cell dysfunction.
- To explore the role of mitochondrial aldehyde dehydrogenase-2 (ALDH2) in this process.
- To examine the relationship between doxorubicin, ALDH2, and insulin signaling.
Main Methods:
- INS-1 cells were treated with doxorubicin, ALDH2 activators/inhibitors, and other targeted agents.
- ALDH2 activity, protein levels, mitochondrial reactive oxygen species (ROS), membrane potential, and lipid ROS were measured.
- Cell viability was assessed using CCK-assay.
Main Results:
- Doxorubicin exposure decreased insulin signaling and increased ALDH2 degradation via acid sphingomyelinase and ceramide induction.
- Ceramide potentiated doxorubicin-induced mitochondrial dysfunction and cell death.
- ALDH2 activation with ALDA1 inhibited doxorubicin-induced acid sphingomyelinase activation, ceramide production, and cell death.
- ALDA1 also stimulated casein kinase-2 (CK2) mediated insulin signaling, which was essential for ALDH2's protective function.
Conclusions:
- Mitochondrial ALDH2 activation protects pancreatic β-cells from doxorubicin-induced dysfunction.
- This protection is mediated by inhibiting acid sphingomyelinase-induced ceramide production and regulating CK2 signaling.
- ALDH2 activation represents a potential therapeutic strategy for mitigating chemotherapy-induced β-cell toxicity.
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