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Loss of Gi G-Protein-Coupled Receptor Signaling in Osteoblasts Accelerates Bone Fracture Healing
Liping Wang1, Edward C Hsiao2, Shirley Lieu3
1Endocrine Research Unit, VA Medical Center and Departments of Medicine and Physiology, University of California, San Francisco, CA.
Abstract:
G-protein-coupled receptors (GPCRs) are key regulators of skeletal homeostasis and are likely important in fracture healing. Because GPCRs can activate multiple signaling pathways simultaneously, we used targeted disruption of G(i) -GPCR or activation of G(s) -GPCR pathways to test how each pathway functions in the skeleton. We previously demonstrated that blockade of G(i) signaling by pertussis toxin (PTX) transgene expression in maturing osteoblastic cells enhanced cortical and trabecular bone formation and prevented age-related bone loss in female mice. In addition, activation of G(s) signaling by expressing the G(s) -coupled engineered receptor Rs1 in maturing osteoblastic cells induced massive trabecular bone formation but cortical bone loss. Here, we test our hypothesis that the G(i) and G(s) pathways also have distinct functions in fracture repair. We applied closed, nonstabilized tibial fractures to mice in which endogenous G(i) signaling was inhibited by PTX, or to mice with activated G(s) signaling mediated by Rs1. Blockade of endogenous G(i) resulted in a smaller callus but increased bone formation in both young and old mice. PTX treatment decreased expression of Dkk1 and increased Lef1 mRNAs during fracture healing, suggesting a role for endogenous G(i) signaling in maintaining Dkk1 expression and suppressing Wnt signaling. In contrast, adult mice with activated Gs signaling showed a slight increase in the initial callus size with increased callus bone formation. These results show that G(i) blockade and G(s) activation of the same osteoblastic lineage cell can induce different biological responses during fracture healing. Our findings also show that manipulating the GPCR/cAMP signaling pathway by selective timing of G(s) and G(i) -GPCR activation may be important for optimizing fracture repair.
Insights
Targeting G-protein-coupled receptor (GPCR) pathways in bone cells differentially affects fracture healing. Inhibiting G(i) signaling reduces callus size but boosts bone formation, while activating G(s) signaling increases callus bone formation.
Area of Science:
- Skeletal biology and regenerative medicine
- Cellular signaling pathways in bone remodeling
- G-protein-coupled receptor (GPCR) function in osteoblasts
Background:
- GPCRs regulate skeletal homeostasis and are implicated in fracture healing.
- GPCRs activate multiple signaling pathways, including G(i) and G(s).
- Previous studies showed G(i) blockade enhances bone formation and G(s) activation increases trabecular bone.
Purpose of the Study:
- To investigate the distinct roles of G(i) and G(s) GPCR pathways in fracture repair.
- To test the hypothesis that these pathways have separate functions during skeletal healing.
- To determine if manipulating these pathways can optimize fracture repair.
Main Methods:
- Utilized mouse models with targeted disruption of G(i) signaling (pertussis toxin, PTX) or activation of G(s) signaling (Rs1 receptor).
- Induced closed, non-stabilized tibial fractures in these genetically modified mice.
- Analyzed fracture callus size, bone formation, and gene expression (Dkk1, Lef1) during healing.
Main Results:
- G(i) blockade (PTX) resulted in smaller calluses but increased bone formation in young and old mice.
- PTX treatment decreased Dkk1 and increased Lef1 mRNA, suggesting G(i) influences Wnt signaling.
- G(s) activation (Rs1) showed a slight increase in initial callus size and enhanced callus bone formation.
Conclusions:
- G(i) and G(s) pathways exert distinct effects on fracture healing when activated in osteoblastic cells.
- Selective manipulation of GPCR/cAMP signaling pathways may be crucial for optimizing fracture repair.
- Understanding these differential pathway functions offers potential therapeutic targets for improving bone healing.
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