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Conditional expression of a Gi-coupled receptor in osteoblasts results in trabecular osteopenia
1Endocrine Research Unit, Veterans' Affairs Medical Center, and Department of Medicine, University of California, San Francisco, California 94121, USA.
Abstract:
G protein-coupled receptors (GPCRs) coupled to activation of Gs, such as the PTH1 receptor (PTH1R), have long been known to regulate skeletal function and homeostasis. However, the role of GPCRs coupled to other G proteins such as Gi is not well established. We used the tet-off system to regulate the expression of an activated Gi-coupled GPCR (Ro1) in osteoblasts in vivo. Skeletal phenotypes were assessed in mice expressing Ro1 from conception, from late stages of embryogenesis, and after weaning. Long bones were assessed histologically and by microcomputed tomography. Expression of Ro1 from conception resulted in neonatal lethality that was associated with reduced bone mineralization. Expression of Ro1 starting at late embryogenesis resulted in a severe trabecular bone deficit at 12 wk of age (>51% reduction in trabecular bone volume fraction in the proximal tibia compared with sex-matched control littermates; n = 11; P < 0.01). Ro1 expression for 8 wk beginning at 4 wk of age resulted in a more than 20% reduction in trabecular bone volume fraction compared with sex-matched control littermates (n = 16; P < 0.01). Bone histomorphometry revealed that Ro1 expression is associated with reduced rates of bone formation and mineral apposition without a significant change in osteoblast or osteoclast surface. Our results indicate that signaling by a Gi-coupled GPCR in osteoblasts leads to osteopenia resulting from a reduction in trabecular bone formation. The severity of the phenotype is related to the timing and duration of Ro1 expression during growth and development. The skeletal phenotype in Ro1 mice bears some similarity to that produced by knockout of Gs-alpha expression in osteoblasts and thus may be due at least in part to Gi-mediated inhibition of adenylyl cyclase.
Insights
Signaling through Gi-coupled G protein-coupled receptors (GPCRs) in osteoblasts reduces bone formation, leading to osteopenia. The severity of this bone deficit depends on the timing and duration of Gi-coupled GPCR expression during development.
Area of Science:
- Molecular Endocrinology
- Skeletal Biology
- G protein-coupled receptors signaling
Background:
- G protein-coupled receptors (GPCRs) activating Gs proteins, like the PTH1 receptor, are established regulators of skeletal homeostasis.
- The function of GPCRs coupled to Gi proteins in bone is not well understood.
Purpose of the Study:
- To investigate the role of Gi-coupled GPCR signaling in osteoblasts in vivo.
- To determine the impact of activated Gi-coupled GPCR (Ro1) expression on skeletal development and bone homeostasis.
Main Methods:
- Utilized a tet-off system to control the expression of an activated Gi-coupled GPCR (Ro1) in mouse osteoblasts.
- Assessed skeletal phenotypes using histology and microcomputed tomography (micro-CT) at various developmental stages.
- Performed bone histomorphometry to analyze bone formation and remodeling parameters.
Main Results:
- Neonatal lethality and reduced bone mineralization observed with Ro1 expression from conception.
- Significant trabecular bone deficit (>51% reduction) in mice expressing Ro1 from late embryogenesis.
- Reduced bone formation and mineral apposition rates, without altering osteoblast or osteoclast surfaces, in mice expressing Ro1 post-weaning.
Conclusions:
- Signaling by a Gi-coupled GPCR in osteoblasts causes osteopenia by reducing trabecular bone formation.
- The observed skeletal phenotype is dependent on the timing and duration of Gi-coupled GPCR expression.
- Gi-mediated inhibition of adenylyl cyclase may contribute to the observed bone loss, similar to Gs-alpha knockout phenotypes.
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