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Absence of P2Y2 Receptor Does Not Prevent Bone Destruction in a Murine Model of Muscle Paralysis-Induced Bone Loss
Ankita Agrawal1, Maria Ellegaard1, Kristian Agmund Haanes2
1Department of Clinical Biochemistry, Copenhagen University Hospital Rigshospitalet, Glostrup, Denmark.
Abstract:
Increased incidence of bone fractures in the elderly is associated with gradual sarcopenia. Similar deterioration of bone quality is seen with prolonged bed rest, spinal cord injuries or in astronauts exposed to microgravity and, preceded by loss of muscle mass. Signaling mechanisms involving uridine-5'-triphosphate (UTP) regulate bone homeostasis via P2Y2 receptors on osteoblasts and osteoclasts, whilst dictating the bone cells' response to mechanical loading. We hypothesized that muscle paralysis-induced loss of bone quality would be prevented in P2Y2 receptor knockout (KO) mice. Female mice injected with botulinum toxin (BTX) in the hind limb developed muscle paralysis and femoral DXA analysis showed reduction in bone mineral density (<10%), bone mineral content (<16%) and bone area (<6%) in wildtype (WT) compared to KO littermates (with <13%, <21%, <9% respectively). The femoral metaphyseal strength was reduced equally in both WT and KO (<37%) and <11% in diaphysis region of KO, compared to the saline injected controls. Tibial micro-CT showed reduced cortical thickness (12% in WT vs. 9% in KO), trabecular bone volume (38% in both WT and KO), trabecular thickness (22% in WT vs. 27% in KO) and increased SMI (26% in WT vs. 19% in KO) after BTX. Tibial histomorphometry showed reduced formation in KO (16%) but unchanged resorption in both WT and KO. Furthermore, analyses of DXA and bone strength after regaining the muscle function showed partial bone recovery in the KO but no difference in the bone recovery in WT mice. Primary osteoblasts from KO mice displayed increased viability and alkaline phosphatase activity but, impaired bone nodule formation. Significantly more TRAP-positive osteoclasts were generated from KO mice but displayed reduced resorptive function. Our data showed that hind limb paralysis with a single dose of BTX caused profound bone loss after 3 weeks, and an incomplete reversal of bone loss by week 19. Our findings indicate no role of the P2Y2 receptor in the bone loss after a period of skeletal unloading in mice or, in the bone recovery after restoration of muscle function.
Insights
Muscle paralysis causes bone loss, but the P2Y2 receptor does not prevent this skeletal unloading effect in mice. Bone recovery after regaining muscle function was also not influenced by the P2Y2 receptor.
Area of Science:
- Bone biology
- Skeletal physiology
- Musculoskeletal research
Background:
- Bone fractures increase with age, often linked to sarcopenia (age-related muscle loss).
- Similar bone quality decline occurs with prolonged immobility (bed rest, spinal cord injury, microgravity).
- Uridine-5'-triphosphate (UTP) signaling via P2Y2 receptors influences bone homeostasis and mechanical loading responses.
Purpose of the Study:
- To investigate if P2Y2 receptor knockout (KO) prevents bone loss induced by muscle paralysis.
- To determine the role of P2Y2 receptors in skeletal unloading and subsequent bone recovery.
Main Methods:
- Botulinum toxin (BTX) induced hind limb paralysis in wildtype (WT) and P2Y2 receptor KO mice.
- Bone mineral density, content, area, and strength were assessed using DXA and mechanical testing.
- Tibial micro-CT and histomorphometry analyzed bone structure and remodeling.
- Osteoblast and osteoclast function assays were performed.
Main Results:
- BTX-induced paralysis caused significant bone loss (reduced density, content, area, strength) in both WT and KO mice.
- P2Y2 receptor KO did not prevent bone loss or significantly alter structural changes (cortical thickness, trabecular volume) compared to WT.
- Partial bone recovery was observed in KO mice after muscle function restoration, but not in WT mice.
Conclusions:
- The P2Y2 receptor plays no significant role in mediating bone loss due to skeletal unloading from paralysis.
- The P2Y2 receptor may be involved in the incomplete bone recovery process after muscle function is restored.
- These findings challenge the hypothesized protective role of P2Y2 receptors against unloading-induced bone loss.
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