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Analysis of Minerals Produced by hFOB 1.19 and Saos-2 Cells Using Transmission Electron Microscopy with Energy Dispersive X-ray Microanalysis
Published on: June 24, 2018
The effects of direct factor Xa inhibitor (Rivaroxaban) on the human osteoblastic cell line SaOS2
Roy Gigi1, Moshe Salai, Oleg Dolkart
1Division of Orthopedic Surgery, Tel Aviv Sourasky Medical Center, Tel-Aviv, Israel. roygigimd@gmail.com
Abstract:
Thromboprophylaxis reduces the risk of surgery-related deep vein thrombosis, but anticoagulants were associated with systemic osteoporosis, a known risk factor for poor fracture healing. Rivaroxaban (XARELTO(®)) is a novel anticoagulant with specific ability to inhibit factor Xa, a serine endopeptidase, which plays a key role in coagulation. This study investigated the direct effects of rivaroxaban on bone biology using an in vitro cell culture model from the human female osteoblastic cell line SaOS2. Cells at subconfluence were treated for 24 hr with different concentrations of rivaroxaban and analyzed for DNA synthesis and creatine kinase- and alkaline phosphatase-specific activities, and were treated 21 days for analyzing mineralization. Rivaroxaban (0.01-50 μg/ml) dose-dependently inhibited up to 60% DNA synthesis of the cells. Creatine kinase-specific activity was also inhibited dose-dependently to a similar extent by the same concentrations. Alkaline phosphatase-specific activity was dose-dependently inhibited but only up to 30%. Cell mineralization was unaffected by 10 μg/ml rivaroxaban. This model demonstrated a significant rivaroxaban-induced reduction in osteoblastic cell growth and energy metabolism, and slight inhibition of the osteoblastic marker, alkaline phosphatase, while osteoblastic mineralization was unaffected. These findings might indicate that rivaroxaban inhibits the first stage of bone formation but does not affect later stages (i.e., bone mineralization).
Insights
Rivaroxaban, an anticoagulant, inhibits osteoblastic cell growth and energy metabolism in vitro. While it slightly reduces alkaline phosphatase activity, it does not affect bone mineralization, suggesting it impacts early bone formation stages.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Anticoagulants like rivaroxaban are used for thromboprophylaxis but may be linked to systemic osteoporosis and impaired fracture healing.
- Rivaroxaban selectively inhibits factor Xa, a key enzyme in the coagulation cascade.
Purpose of the Study:
- To investigate the direct effects of rivaroxaban on human osteoblastic cells in vitro.
- To determine rivaroxaban's impact on osteoblastic cell proliferation, metabolism, and mineralization.
Main Methods:
- Human female osteoblastic SaOS2 cells were cultured and treated with varying concentrations of rivaroxaban (0.01-50 μg/ml).
- Assays were performed to measure DNA synthesis, creatine kinase activity, alkaline phosphatase activity, and mineralization over 24 hours and 21 days.
Main Results:
- Rivaroxaban dose-dependently inhibited DNA synthesis by up to 60% and creatine kinase activity by a similar extent.
- Alkaline phosphatase activity was dose-dependently inhibited by up to 30%.
- Osteoblastic mineralization remained unaffected at a concentration of 10 μg/ml rivaroxaban.
Conclusions:
- Rivaroxaban significantly reduces osteoblastic cell growth and energy metabolism in vitro.
- The drug shows slight inhibition of alkaline phosphatase, an osteoblastic marker, but does not affect mineralization.
- These findings suggest rivaroxaban may inhibit early stages of bone formation without impacting later mineralization processes.
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