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Metformin Protects Neurons against Oxygen-Glucose Deprivation/Reoxygenation -Induced Injury by Down-Regulating MAD2B
Xianfang Meng1, Guangpin Chu, Zhihua Yang
1Department of Neurobiology, School of Basic Medicine, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.
Background/Aims:
Metformin, the common medication for type II diabetes, has protective effects on cerebral ischemia. However, the molecular mechanisms are far from clear. Mitotic arrest deficient 2-like protein 2 (MAD2B), an inhibitor of the anaphase-promoting complex (APC), is widely expressed in hippocampal and cortical neurons and plays an important role in mediating high glucose-induced neurotoxicity. The present study investigated whether metformin modifies the expression of MAD2B and to exert its neuroprotective effects in primary cultured cortical neurons during oxygen-glucose deprivation/reoxygenation (OGD/R), a widely used in vitro model of ischemia/reperfusion.
Methods:
Primary cortical neurons were cultured, deprived of oxygen-glucose for 1 h, and then recovered with oxygen-glucose for 12 h and 24 h. Cell viability was measured by detecting the levels of lactate dehydrogenase (LDH) in culture medium. The levels of MAD2B, cyclin B and p-histone 3 were measured by Western blot.
Results:
Cell viability of neurons was reduced under oxygen-glucose deprivation/reoxygenation (OGD/R). The expression of MAD2B was increased under OGD/R. The levels of cyclin B1, which is a substrate of APC, were also increased. Moreover, OGD/R up-regulated the phosphorylation levels of histone 3, which is the induction of aberrant re-entry of post-mitotic neurons. However, pretreatment of neurons with metformin alleviated OGD/R-induced injury. Metformin further decreased the expression of MAD2B, cyclin B1 and phosphorylation levels of histone 3.
Conclusion:
Metformin exerts its neuroprotective effect through regulating the expression of MAD2B in neurons under OGD/R.
Insights
Metformin protects neurons from ischemic injury by reducing levels of MAD2B and cyclin B1. This study reveals a key molecular mechanism for metformin
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Metformin, a type II diabetes drug, shows promise in protecting against cerebral ischemia.
- The precise molecular pathways underlying metformin's neuroprotection remain unclear.
- Mitotic arrest deficient 2-like protein 2 (MAD2B) is implicated in high glucose-induced neurotoxicity in neurons.
Purpose of the Study:
- To investigate if metformin alters MAD2B expression.
- To determine if metformin exerts neuroprotective effects in primary cortical neurons during oxygen-glucose deprivation/reoxygenation (OGD/R).
Main Methods:
- Primary cortical neurons were subjected to OGD/R.
- Cell viability was assessed using lactate dehydrogenase (LDH) release.
- Western blotting was used to measure levels of MAD2B, cyclin B1, and phosphorylated histone 3.
Main Results:
- OGD/R reduced neuronal viability and increased MAD2B, cyclin B1, and phosphorylated histone 3 levels.
- Metformin pretreatment mitigated OGD/R-induced neuronal injury.
- Metformin significantly decreased OGD/R-induced increases in MAD2B, cyclin B1, and phosphorylated histone 3.
Conclusions:
- Metformin demonstrates neuroprotective effects against OGD/R in cortical neurons.
- Metformin's neuroprotection is mediated by the regulation of MAD2B expression.
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