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Published on: January 7, 2013
Overexpression of appoptosin promotes mitochondrial damage in MIN6 cells
Tianxi Wang1, Wenjing Wei1, Hussen Amir Ahmed Mansai1
1Xiamen Diabetes Institute, The First Affiliated Hospital of Xiamen University, Xiamen, Fujian 361003, P.R. China.
Abstract:
Damage to pancreatic β‑cells is closely associated with diabetes. However, the mechanism underlying injury to pancreatic β‑cells remains unclear, although hypoxia is considered as one of the leading causes. Appoptosin is a mitochondrial protein that promotes neuronal apoptosis. Studies conducted on appoptosin thus far have primarily focused on Alzheimer's disease, and have demonstrated that the expression of appoptosin is significantly increased in ischemic‑reperfused rat brains, which indicates its close association with hypoxia. However, the role of appoptosin in pancreatic β‑cells, which are sensitive to hypoxia, remains unknown. Therefore, the current study aimed to investigate the function of appoptosin in pancreatic β‑cells in a hypoxic environment. Cobalt chloride (CoCl2) was used to mimic the hypoxic status of the cells. The results of a terminal deoxynucleotidyl transferase dUTP nick‑end labeling assay demonstrated that CoCl2 promoted apoptosis in MIN6 mouse insulinoma cells, and western blotting and reverse transcription‑quantitative polymerase chain reaction results demonstrated that the activation of appoptosin was induced, promoting mitochondrial damage and caspase 3 activation. Silencing of appoptosin using short hairpin RNA significantly reduced CoCl2‑induced apoptosis in MIN6 cells. In conclusion, CoCl2 increased the expression of appoptosin, which aggravated mitochondrial damage in MIN6 cells. Therefore, inhibiting the expression of appoptosin may benefit pancreatic β-cells survival during islet transplantation.
Insights
Hypoxia induces appoptosin expression, leading to pancreatic beta-cell apoptosis and mitochondrial damage. Inhibiting appoptosin may protect beta-cells during islet transplantation, offering a potential therapeutic strategy for diabetes.
Area of Science:
- Cell Biology
- Endocrinology
- Molecular Medicine
Background:
- Pancreatic beta-cell damage is linked to diabetes, with hypoxia a key suspected cause.
- Appoptosin, a mitochondrial protein, is known to induce apoptosis and is upregulated in hypoxic conditions, particularly in neuronal tissues.
- The specific role of appoptosin in pancreatic beta-cells under hypoxic stress is currently unknown.
Purpose of the Study:
- To investigate the function of appoptosin in pancreatic beta-cells under hypoxic conditions.
- To determine if appoptosin plays a role in hypoxia-induced beta-cell apoptosis.
- To explore potential therapeutic targets for protecting beta-cells from hypoxic injury.
Main Methods:
- Mimicking hypoxia using cobalt chloride (CoCl2) in MIN6 mouse insulinoma cells.
- Assessing apoptosis via terminal deoxynucleotidyl transferase dUTP nick-end labeling (TUNEL) assay.
- Evaluating appoptosin expression, mitochondrial damage, and caspase 3 activation using western blotting and reverse transcription-quantitative polymerase chain reaction (RT-qPCR).
- Investigating the effect of appoptosin silencing using short hairpin RNA (shRNA).
Main Results:
- Cobalt chloride treatment induced apoptosis in MIN6 cells.
- Hypoxia activated appoptosin expression, leading to increased mitochondrial damage and caspase 3 activation.
- Silencing appoptosin significantly reduced hypoxia-induced apoptosis in MIN6 cells.
- Appoptosin upregulation exacerbates mitochondrial damage in pancreatic beta-cells under hypoxic stress.
Conclusions:
- Cobalt chloride-induced hypoxia increases appoptosin expression in pancreatic beta-cells.
- Appoptosin activation contributes to mitochondrial damage and apoptosis in beta-cells.
- Inhibiting appoptosin expression presents a potential strategy to enhance pancreatic beta-cell survival, particularly relevant for islet transplantation.
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