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Published on: August 23, 2024
AKT-GSK3β Signaling Pathway Regulates Mitochondrial Dysfunction-Associated OPA1 Cleavage Contributing to Osteoblast
1Institute of Stomatology, School and Hospital of Stomatology, Wenzhou Medical University, Wenzhou, China.
Abstract:
Oxidative stress (OS) induces osteoblast apoptosis, which plays a crucial role in the initiation and progression of osteoporosis. Although OS is closely associated with mitochondrial dysfunction, detailed mitochondrial mechanisms underlying OS-induced osteoblast apoptosis have not been thoroughly elucidated to date. In the present study, we found that mitochondrial abnormalities largely contributed to OS-induced osteoblast apoptosis, as evidenced by enhanced production of mitochondrial reactive oxygen species; considerable reduction in mitochondrial respiratory chain complex activity, mitochondrial membrane potential, and adenosine triphosphate production; abnormality in mitochondrial morphology; and alteration of mitochondrial dynamics. These mitochondrial abnormalities were primarily mediated by an imbalance in mitochondrial fusion and fission through a protein kinase B- (AKT-) glycogen synthase kinase 3β- (GSK3β-) optic atrophy 1- (OPA1-) dependent mechanism. Hydroxytyrosol (3,4-dihydroxyphenylethanol (HT)), an important compound in virgin olive oil, significantly prevented OS-induced osteoblast apoptosis. Specifically, HT inhibited OS-induced mitochondrial dysfunction by decreasing OPA1 cleavage and by increasing AKT and GSK3β phosphorylation. Together, our results indicate that the AKT-GSK3β signaling pathway regulates mitochondrial dysfunction-associated OPA1 cleavage, which may contribute to OS-induced osteoblast apoptosis. Moreover, our results suggest that HT could be an effective nutrient for preventing osteoporosis development.
Insights
Oxidative stress causes osteoblast apoptosis and osteoporosis via mitochondrial dysfunction. Hydroxytyrosol (HT) prevents this by improving mitochondrial function and regulating key proteins, suggesting HT as a potential osteoporosis nutrient.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Medicine
Background:
- Osteoporosis is linked to oxidative stress (OS)-induced osteoblast apoptosis.
- Mitochondrial dysfunction is implicated in OS, but mechanisms are unclear.
Purpose of the Study:
- Elucidate mitochondrial mechanisms in OS-induced osteoblast apoptosis.
- Investigate hydroxytyrosol's (HT) protective effects.
Main Methods:
- Assessed mitochondrial function (ROS, ATP, membrane potential, morphology, dynamics).
- Investigated the AKT-GSK3β-OPA1 pathway.
- Evaluated HT's impact on OS-induced apoptosis and mitochondrial dysfunction.
Main Results:
- OS induced osteoblast apoptosis via mitochondrial dysfunction (impaired respiration, morphology, dynamics).
- This was mediated by AKT-GSK3β-OPA1 pathway imbalance.
- HT treatment reduced OS-induced apoptosis by improving mitochondrial function and regulating OPA1 cleavage via AKT/GSK3β phosphorylation.
Conclusions:
- The AKT-GSK3β pathway regulates mitochondrial dysfunction and OPA1 cleavage, contributing to OS-induced osteoblast apoptosis.
- HT shows potential as a therapeutic nutrient for preventing osteoporosis.
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