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Published on: February 28, 2017
Activin receptor type 2A (ACVR2A) functions directly in osteoblasts as a negative regulator of bone mass
Brian C Goh1, Vandana Singhal1, Angelica J Herrera1
1From the Departments of Orthopaedic Surgery and.
Abstract:
Bone and skeletal muscle mass are highly correlated in mammals, suggesting the existence of common anabolic signaling networks that coordinate the development of these two anatomically adjacent tissues. The activin signaling pathway is an attractive candidate to fulfill such a role. Here, we generated mice with conditional deletion of activin receptor (ACVR) type 2A, ACVR2B, or both, in osteoblasts, to determine the contribution of activin receptor signaling in regulating bone mass. Immunohistochemistry localized ACVR2A and ACVR2B to osteoblasts and osteocytes. Primary osteoblasts expressed activin signaling components, including ACVR2A, ACVR2B, and ACVR1B (ALK4) and demonstrated increased levels of phosphorylated Smad2/3 upon exposure to activin ligands. Osteoblasts lacking ACVR2B did not show significant changes in vitro However, osteoblasts deficient in ACVR2A exhibited enhanced differentiation indicated by alkaline phosphatase activity, mineral deposition, and transcriptional expression of osterix, osteocalcin, and dentin matrix acidic phosphoprotein 1. To investigate activin signaling in osteoblasts in vivo, we analyzed the skeletal phenotypes of mice lacking these receptors in osteoblasts and osteocytes (osteocalcin-Cre). Similar to the lack of effect in vitro, ACVR2B-deficient mice demonstrated no significant change in any bone parameter. By contrast, mice lacking ACVR2A had significantly increased femoral trabecular bone volume at 6 weeks of age. Moreover, mutant mice lacking both ACVR2A and ACVR2B demonstrated sustained increases in trabecular bone volume, similar to those in ACVR2A single mutants, at 6 and 12 weeks of age. Taken together, these results indicate that activin receptor signaling, predominantly through ACVR2A, directly and negatively regulates bone mass in osteoblasts.
Insights
Activin receptor signaling, primarily via activin receptor type 2A (ACVR2A), negatively regulates bone mass. Deleting ACVR2A in osteoblasts increases bone volume in mice, highlighting its role in bone homeostasis.
Area of Science:
- Bone biology
- Cell signaling
- Endocrinology
Background:
- Bone and skeletal muscle mass share common anabolic signaling pathways.
- The activin signaling pathway is a potential regulator of bone development.
- Osteoblasts and osteocytes express activin receptors ACVR2A and ACVR2B.
Purpose of the Study:
- To determine the role of activin receptor signaling in regulating bone mass.
- To investigate the contribution of ACVR2A and ACVR2B in osteoblasts.
Main Methods:
- Generated mice with conditional deletion of ACVR2A, ACVR2B, or both in osteoblasts.
- Utilized immunohistochemistry to localize receptors.
- Assessed osteoblast differentiation in vitro (alkaline phosphatase, mineral deposition, gene expression).
- Analyzed skeletal phenotypes in vivo (femoral trabecular bone volume).
Main Results:
- Osteoblasts lacking ACVR2A showed enhanced differentiation in vitro.
- Mice lacking ACVR2A in osteoblasts exhibited significantly increased femoral trabecular bone volume.
- Mice lacking both ACVR2A and ACVR2B showed sustained increases in bone volume.
- ACVR2B deficiency did not significantly alter bone parameters.
Conclusions:
- Activin receptor signaling, predominantly through ACVR2A, negatively regulates bone mass.
- ACVR2A plays a direct role in controlling bone density in osteoblasts.
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