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Published on: March 18, 2019
Increased osteoclast activity in the presence of increased homocysteine concentrations
Markus Herrmann1, Thomas Widmann, Graziana Colaianni
1Abteilung für Klinische Chemie und Laboratoriumsmedizin/Zentrallabor and Klinik für Innere Medizin I, Universitätsklinikum des Saarlandes, Homburg/Saar, Germany.
Insights
High homocysteine (HCY) levels stimulate osteoclast activity, a key process in bone resorption. This suggests HCY may play a role in osteoporosis and bone metabolism.
Area of Science:
- Biochemistry
- Cell Biology
- Bone Metabolism
Background:
- Elevated plasma homocysteine (HCY) is a potential risk factor for osteoporotic fractures.
- HCY may negatively impact bone metabolism and cellular activity.
Purpose of the Study:
- To investigate the direct effect of homocysteine (HCY) on human osteoclast (OC) activity.
- To elucidate the mechanistic role of HCY in bone resorption.
Main Methods:
- Human peripheral blood mononuclear cells were cultured and differentiated into osteoclasts (OCs).
- Cells were exposed to varying concentrations of HCY (0-100 micromol/L) for 20 days.
- Osteoclast activity was assessed by measuring tartrate-resistant acid phosphatase (TRAP) and cathepsin K (CP-K) activity, and bone-resorbing capacity on dentine slices.
Main Results:
- Increased HCY concentrations significantly stimulated TRAP activity in a dose-dependent manner.
- HCY exposure led to a marked increase in cathepsin K (CP-K) activity.
- Bone-resorbing activity was significantly enhanced by higher HCY concentrations, while cysteine and glutathione showed inhibitory effects.
Conclusions:
- Increased homocysteine (HCY) concentrations specifically enhance osteoclast (OC) activity in vitro.
- These findings suggest a direct mechanistic link between HCY and bone resorption.
- Further research into HCY's role in osteoporosis may reveal novel therapeutic strategies.
Background:
Increased plasma homocysteine (HCY) may be an independent risk factor for osteoporotic fractures and therefore may also adversely affect bone metabolism. We analyzed the effect of HCY on human osteoclast (OC) activity.
Methods:
We cultured peripheral blood mononuclear cells from 17 healthy male donors [median (SD) age, 30 (5) years] for 20 days with 25 microg/L macrophage-colony-stimulating factor (days 0-11), 20 microg/L receptor-activator of nuclear factor-kappaB ligand (days 6-20), and 4 different concentrations of HCY (0, 10, 50, and 100 micromol/L; days 0-20). For control purposes, cysteine and glutathione were tested in equimolar concentrations. OCs were identified as large, multinucleated cells with tartrate-resistant acid phosphatase (TRAP) activity and surface vitronectin receptors. We quantified OC activity by measuring TRAP activity. We analyzed cathepsin K (CP-K) activity in 9 donor samples and estimated the dentine-resorbing activity on standard dentine slices in 3 samples.
Results:
After 20 days of culture, most cells were fully differentiated OCs. TRAP activity increased with increasing HCY concentrations (P < 0.001). HCY concentrations of 10, 50, and 100 micromol/L stimulated TRAP activity by 20%, 15%, and 42%. Additionally, HCY stimulated CP-K activity (P = 0.005): in the presence of 100 micromol/L HCY, CP-K activity was approximately 38% higher than in controls (P = 0.002). Bone-resorbing activity was significantly increased in cultures with 50 and 100 micromol/L HCY. Cysteine and glutathione significantly decreased TRAP and CP-K activity.
Conclusions:
Increased HCY concentrations specifically stimulate OC activity in vitro, suggesting a mechanistic role of HCY for bone resorption. Future studies clarifying the mechanistic role of increased HCY concentrations in osteoporosis could have interesting therapeutic implications.
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