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依诺肝素钠负载聚甲基丙烯酸甲酯骨水泥通过 ATF2 驱动成骨活性促进股骨干缺损再生。

ATF2-driven osteogenic activity of enoxaparin sodium-loaded polymethylmethacrylate bone cement in femoral defect regeneration.

机构信息

Department of Orthopedic Surgery, The Third Hospital of Hebei Medical University, No. 139, Ziqiang Road, Shijiazhuang, 050051, Hebei, People's Republic of China.

Department of Orthopedic Surgery, Third Hospital of Shijiazhuang, Shijiazhuang, 050000, People's Republic of China.

出版信息

J Orthop Surg Res. 2023 Aug 31;18(1):646. doi: 10.1186/s13018-023-04017-8.

Abstract

BACKGROUND

Polymethylmethacrylate (PMMA) bone cement loaded with enoxaparin sodium (PMMA@ES) has been increasingly highlighted to affect the bone repair of bone defects, but the molecular mechanisms remain unclear. We addressed this issue by identifying possible molecular mechanisms of PMMA@ES involved in femoral defect regeneration based on bioinformatics analysis and network pharmacology analysis.

METHODS

The upregulated genes affecting the osteogenic differentiation of bone marrow mesenchymal stem cells (BMSCs) were selected through bioinformatics analysis, followed by intersection with the genes of ES-induced differentiation of BMSCs identified by network pharmacology analysis. PMMA@ES was constructed. Rat primary BMSCs were isolated and cultured in vitro in the proliferation medium (PM) and osteogenic medium (OM) to measure alkaline phosphatase (ALP) activity, mineralization of the extracellular matrix, and the expression of RUNX2 and OCN using gain- or loss-of-function experiments. A rat femoral bone defect model was constructed to detect the new bone formation in rats.

RESULTS

ATF2 may be a key gene in differentiating BMSCs into osteoblasts. In vitro cell assays showed that PMMA@ES promoted the osteogenic differentiation of BMSCs by increasing ALP activity, extracellular matrix mineralization, and RUNX2 and OCN expression in PM and OM. In addition, ATF2 activated the transcription of miR-335-5p to target ERK1/2 and downregulate the expression of ERK1/2. PMMA@ES induced femoral defect regeneration and the repair of femoral defects in rats by regulating the ATF2/miR-335-5p/ERK1/2 axis.

CONCLUSION

The evidence provided by our study highlighted the ATF2-mediated mechanism of PMMA@ES in the facilitation of the osteogenic differentiation of BMSCs and femoral defect regeneration.

摘要

背景

聚甲基丙烯酸甲酯(PMMA)骨水泥负载依诺肝素钠(PMMA@ES)已越来越多地被强调可影响骨缺损的骨修复,但分子机制尚不清楚。我们通过基于生物信息学分析和网络药理学分析,确定 PMMA@ES 参与股骨干缺损再生的可能分子机制来解决这一问题。

方法

通过生物信息学分析选择影响骨髓间充质干细胞(BMSCs)成骨分化的上调基因,然后与网络药理学分析鉴定的 ES 诱导 BMSCs 分化的基因进行交集。构建 PMMA@ES。分离并体外培养大鼠原代 BMSCs,在增殖培养基(PM)和成骨培养基(OM)中,通过增益或失活实验测量碱性磷酸酶(ALP)活性、细胞外基质矿化以及 RUNX2 和 OCN 的表达。构建大鼠股骨干骨缺损模型,检测大鼠新骨形成。

结果

ATF2 可能是将 BMSCs 分化为成骨细胞的关键基因。体外细胞实验表明,PMMA@ES 通过增加 PM 和 OM 中 ALP 活性、细胞外基质矿化以及 RUNX2 和 OCN 的表达,促进 BMSCs 的成骨分化。此外,ATF2 激活 miR-335-5p 的转录,以靶向 ERK1/2 并下调 ERK1/2 的表达。PMMA@ES 通过调节 ATF2/miR-335-5p/ERK1/2 轴诱导股骨干缺损再生和大鼠股骨干缺损修复。

结论

本研究提供的证据强调了 PMMA@ES 促进 BMSCs 成骨分化和股骨干缺损再生的 ATF2 介导机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f004/10470168/4f69e047041d/13018_2023_4017_Fig1_HTML.jpg

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