血小板因子 4 通过抑制整合素 α5-FAK-ERK 通路诱导骨质流失。

Animal Models and Experimental Medicine Pub Date : 2023-12-01 Epub Date: 2023-08-11 DOI:10.1002/ame2.12342
Wei Li, Qiwei Zhang, Ranli Gu, Lijun Zeng, Hao Liu
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引用次数: 0

摘要

背景:血小板因子4(PF4)对骨髓间充质干细胞(BMMSCs)和骨质疏松症的影响尚不清楚。因此,本研究旨在评估 PF4 引发小鼠骨质破坏的影响,并确定其潜在机制:首先,使用 CCK8 检测法和流式细胞术分别评估了 BMMSCs 的体外细胞增殖和细胞周期。然后,通过双侧卵巢切除术(OVX)建立了骨质疏松小鼠模型。此外,还使用酶联免疫吸附法测定了 PF4 的浓度。使用显微 CT 和组织学分析评估了股骨的骨微结构。最后,使用定量实时聚合酶链反应和 Western 印迹法研究了骨生成的关键调节因子和通路:结果:人 PF4 能广泛、适度地降低 BMMSCs 的细胞增殖和成骨分化能力。此外,血清和骨髓中的 PF4 水平普遍升高,而骨的微结构则因 OVX 而恶化。此外,体内小鼠补充 PF4 会引发股骨骨质退化。此外,补充PF4还导致骨生成的几个关键调节因子下调,整合素α5-病灶粘附激酶-细胞外信号调节激酶(ITGA5-FAK-ERK)通路受到抑制:结论:PF4可通过抑制ITGA5-FAK-ERK通路,缓解BMMSC成骨分化,从而减少OVX诱导的体内骨质流失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Platelet factor 4 induces bone loss by inhibiting the integrin α5-FAK-ERK pathway.

Background: The effect of platelet factor 4 (PF4) on bone marrow mesenchymal stem cells (BMMSCs) and osteoporosis is poorly understood. Therefore, this study aimed to evaluate the effects of PF4-triggered bone destruction in mice and determine the underlying mechanism.

Methods: First, in vitro cell proliferation and cell cycle of BMMSCs were assessed using a CCK8 assay and flow cytometry, respectively. Osteogenic differentiation was confirmed using staining and quantification of alkaline phosphatase and Alizarin Red S. Next, an osteoporotic mouse model was established by performing bilateral ovariectomy (OVX). Furthermore, the PF4 concentrations were obtained using enzyme-linked immunosorbent assay. The bone microarchitecture of the femur was evaluated using microCT and histological analyses. Finally, the key regulators of osteogenesis and pathways were investigated using quantitative real-time polymerase chain reaction and Western blotting.

Results: Human PF4 widely and moderately decreased the cell proliferation and osteogenic differentiation ability of BMMSCs. Furthermore, the levels of PF4 in the serum and bone marrow were generally increased, whereas bone microarchitecture deteriorated due to OVX. Moreover, in vivo mouse PF4 supplementation triggered bone deterioration of the femur. In addition, several key regulators of osteogenesis were downregulated, and the integrin α5-focal adhesion kinase-extracellular signal-regulated kinase (ITGA5-FAK-ERK) pathway was inhibited due to PF4 supplementation.

Conclusions: PF4 may be attributed to OVX-induced bone loss triggered by the suppression of bone formation in vivo and alleviate BMMSC osteogenic differentiation by inhibiting the ITGA5-FAK-ERK pathway.

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