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Comparative Molecular Effects of Dexmedetomidine and Propofol on Osteoblast Migration and Osteogenic Gene Expression
İlhan Kaya1, Günseli Çubukçuoğlu Deniz2, Merve Hayriye Kocaoğlu3
1Department of Oral and Maxillofacial Surgery, Faculty of Dentistry, Bursa Uludağ University, 16120 Bursa, Turkey.
Insights
Dexmedetomidine (DXMT) accelerated wound healing in osteoblasts, increasing specific gene expression. Propofol (POF) showed limited effects, suggesting DXMT may aid bone healing responses.
Area of Science:
- Cell Biology
- Pharmacology
- Biomedical Engineering
Background:
- Anesthetics like dexmedetomidine (DXMT) and propofol (POF) are used in pediatric care.
- Understanding their effects on bone healing is crucial for patient outcomes.
Purpose of the Study:
- To compare the effects of pediatric-equivalent concentrations of DXMT and POF on osteoblast wound healing and gene expression.
- To investigate the potential of DXMT in promoting early cellular responses relevant to bone regeneration.
Main Methods:
- Human osteoblast-like SAOS-2 cells were treated with varying doses of DXMT and POF.
- Scratch-wound closure was monitored over 24 hours.
- Osteogenesis- and cytoskeleton-related gene expression was quantified using qPCR.
Main Results:
- Both DXMT doses significantly accelerated scratch-wound closure compared to controls and POF.
- High-dose DXMT increased expression of VIM and BMP2 genes.
- Elevated ALP and OCN gene expression was observed in the high-dose DXMT group.
Conclusions:
- DXMT enhances in vitro osteoblast wound healing and upregulates specific genes involved in bone formation.
- POF demonstrated limited effects on osteoblast responses under the tested conditions.
- DXMT may positively influence early cellular events in bone healing, warranting further investigation.
Abstract:
This study compared the wound-healing response and osteogenic gene expression profile of osteoblasts exposed to pediatric-equivalent concentrations of dexmedetomidine (DXMT) and propofol (POF). Human osteoblast-like SAOS-2 cells were assigned to control, low- and high-dose DXMT and POF groups based on pharmacokinetically derived free-drug levels. Scratch-wound closure was quantified over 24 h, and expression of osteogenesis- and cytoskeleton-related genes (RANKL, RUNX2, SP7, BMP2, VIM, VCL, OCN, ALP) was measured by SYBR Green quantitative Polymerase Chain Reaction (qPCR). Normality was assessed using the Shapiro-Wilk test, and group differences were analyzed with two-way ANOVA followed by Tukey's multiple comparisons test (p < 0.05). All groups demonstrated complete scratch closure by 24 h, with no differences at 6 h. At 18 h, POF did not differ from the control, whereas DXMT significantly accelerated closure at both doses in a dose-dependent fashion. High-dose DXMT significantly increased VIM (3.95 ± 3.12, p = 0.0144) and BMP2 (2.28 ± 0.70, p = 0.0002) expression, while RUNX2, SP7, and RANKL remained comparable to controls. ALP (1.68 ± 0.40, p = 0.0005) and OCN (3.31 ± 0.35, p = 0.0108) were significantly elevated only in the high-dose DXMT group, whereas POF showed no significant effects. At clinically relevant concentrations, DXMT was associated with enhanced scratch closure and increased expression of selected osteogenesis- and cytoskeleton-related genes in SAOS-2 cells, whereas POF showed limited effects under the tested conditions. These findings suggest that DXMT may influence early in vitro cellular responses relevant to bone healing and should be further validated in functional differentiation models and in vivo studies.
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