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Preventing Disused Bone Loss through Inhibition of Advanced Glycation End Products
Cong-Jin Liu1, Xiao Yang1, Shou-Hui Wang1
1Key Laboratory for Biomechanics and Mechanobiology, Ministry of Education, Beijing Advanced Innovation Center for Biomedical Engineering, School of Biological Science and Medical Engineering, Beihang University, Beijing 100083, China.
Abstract:
Bone loss occurs in astronauts during long-term space flight, but the mechanisms are still unclear. We previously showed that advanced glycation end products (AGEs) were involved in microgravity-induced osteoporosis. Here, we investigated the improvement effects of blocking AGEs formation on microgravity-induced bone loss by using the AGEs formation inhibitor, irbesartan. To achieve this objective, we used a tail-suspended (TS) rat model to simulate microgravity and treated the TS rats with 50 mg/kg/day irbesartan, as well as the fluorochrome biomarkers injected into rats to label dynamic bone formation. To assess the accumulation of AGEs, pentosidine (PEN), non-enzymatic cross-links (NE-xLR), and fluorescent AGEs (fAGEs) were identified in the bone; 8-hydroxydeoxyguanosine (8-OHdG) was analyzed for the reactive oxygen species (ROS) level in the bone. Meanwhile, bone mechanical properties, bone microstructure, and dynamic bone histomorphometry were tested for bone quality assessment, and Osterix and TRAP were immunofluorescences stained for the activities of osteoblastic and osteoclastic cells. Results showed AGEs increased significantly and 8-OHdG expression in bone showed an upward trend in TS rat hindlimbs. The bone quality (bone microstructure and mechanical properties) and bone formation process (dynamic bone formation and osteoblastic cells activities) were inhibited after tail-suspension, and showed a correlation with AGEs, suggesting the elevated AGEs contributed to the disused bone loss. After being treated with irbesartan, the increased AGEs and 8-OHdG expression were significantly inhibited, suggesting irbesartan may reduce ROS to inhibit dicarbonyl compounds, thus suppressing AGEs production after tail-suspension. The inhibition of AGEs can partially alter the bone remodeling process and improve bone quality. Both AGEs accumulation and bone alterations almost occurred in trabecular bone but not in cortical bone, suggesting AGEs effects on bone remodeling under microgravity are dependent on the biological milieu.
Insights
Blocking advanced glycation end products (AGEs) formation with irbesartan may mitigate microgravity-induced bone loss. This study shows irbesartan reduces AGEs and improves bone quality in a simulated spaceflight rat model.
Area of Science:
- Space medicine
- Bone biology
- Pharmacology
Background:
- Microgravity causes bone loss in astronauts, with unclear mechanisms.
- Advanced glycation end products (AGEs) are implicated in microgravity-induced osteoporosis.
- Investigating interventions to prevent spaceflight-related bone loss is crucial.
Purpose of the Study:
- To investigate if blocking AGEs formation with irbesartan can improve microgravity-induced bone loss.
- To assess the impact of irbesartan on AGEs accumulation and bone quality in a simulated microgravity model.
- To explore the correlation between AGEs, reactive oxygen species (ROS), and bone alterations.
Main Methods:
- Utilized a tail-suspended (TS) rat model to simulate microgravity.
- Administered irbesartan to TS rats and assessed AGEs (pentosidine, NE-xLR, fAGEs) and ROS (8-OHdG) levels in bone.
- Evaluated bone microstructure, mechanical properties, dynamic bone histomorphometry, and cellular activity (Osterix, TRAP).
Main Results:
- Tail-suspension significantly increased AGEs and showed an upward trend in 8-OHdG in rat hindlimbs.
- Bone quality and formation were inhibited in TS rats, correlating with elevated AGEs.
- Irbesartan treatment significantly inhibited AGEs and 8-OHdG, improving bone quality and partially altering bone remodeling.
Conclusions:
- Elevated AGEs contribute to disuse bone loss under simulated microgravity.
- Irbesartan may inhibit AGEs production by reducing ROS, thereby improving bone quality.
- AGEs primarily affect trabecular bone remodeling, suggesting milieu-dependent effects under microgravity.
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