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Published on: June 24, 2018
Deficiency of SHP-1 protein-tyrosine phosphatase activity results in heightened osteoclast function and decreased
S Umeda1, W G Beamer, K Takagi
1Jackson Laboratory, Bar Harbor, Maine Kumamoto University of Medicine, Kumamoto, Japan.
Abstract:
Mice homozygous for the motheaten (Hcphme) or viable motheaten (Hcphme-v) mutations are deficient in functional SHP-1 protein-tyrosine phosphatase and show severe defects in hematopoiesis. Comparison of femurs from mev/mev mice revealed significant decreases in bone mineral density (0.33 +/- 0.03 mg/mm3 for mev/mevversus 0.41 +/- 0.01 mg/mm3 for controls) and mineral content (1.97 +/- 0.36 mg for mev/mevversus 10.64 +/- 0.67 for controls) compared with littermate controls. Viable motheaten mice also showed reduced amounts of trabecular bone and decreased cortical thickness. These bone abnormalities were associated with a 14% increase in numbers of multinucleated osteoclasts and an increase in osteoclast resorption activity. In co-cultures of normal osteoblasts with mutant or control bone marrow cells, numbers of osteoclasts developing from mutant mice were increased compared with littermate control mice. Although mev/mev osteoclasts develop in the absence of colony-stimulating factor (CSF)-1, nevertheless cultured osteoclasts show increased size in the presence of CSF-1. CSF-1-deficient osteopetrosis (op/op) mutant mice develop severe osteosclerosis. However, doubly homozygous mev/mevop/op mice show an expansion of bone marrow cavities and reduced trabecular bone mass compared with op/op mice. Western blot analysis showed that several proteins that were markedly hyperphosphorylated on tyrosine residues were detected in the motheaten osteoclasts, including a novel 126-kd phosphotyrosine protein. The marked hyperphosphorylation of a 126-kd protein in motheaten osteoclasts suggests that this protein depends on SHP-1 for dephosphorylation. These findings demonstrate that the decreased SHP-1 catalytic activity in me/me and mev/mev mice results in an increased population of activated osteoclasts and consequent reduction in bone density.
Insights
Motheaten mice lacking SHP-1 phosphatase exhibit reduced bone density due to increased osteoclast activity. This highlights SHP-1
Area of Science:
- Skeletal Biology and Bone Metabolism
- Hematopoiesis and Immunology
Background:
- Motheaten (me/me) and viable motheaten (mev/mev) mice have mutations affecting the SHP-1 protein-tyrosine phosphatase.
- SHP-1 plays a critical role in regulating hematopoietic cell function and bone homeostasis.
Purpose of the Study:
- To investigate the impact of SHP-1 deficiency on bone mineral density, bone structure, and osteoclast biology in motheaten mice.
- To explore the role of SHP-1 in regulating osteoclast formation and activity.
Main Methods:
- Analysis of bone mineral density and content in femurs of me/me and control mice.
- Histomorphometric analysis of trabecular and cortical bone.
- Co-culture experiments of osteoblasts with bone marrow cells from mutant and control mice.
- Western blot analysis to detect phosphoproteins in osteoclasts.
Main Results:
- Motheaten mice exhibited significantly decreased bone mineral density and content, reduced trabecular bone, and thinner cortical bone.
- An increased number and resorption activity of osteoclasts were observed in motheaten mice.
- Hyperphosphorylation of a 126-kd protein in motheaten osteoclasts suggests its dependence on SHP-1 for dephosphorylation.
Conclusions:
- Decreased SHP-1 activity in motheaten mice leads to an increased population of activated osteoclasts.
- This dysregulation of osteoclast function results in reduced bone density and skeletal abnormalities.
- SHP-1 is crucial for regulating osteoclast activity and maintaining bone homeostasis.
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