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High extracellular magnesium inhibits mineralized matrix deposition and modulates intracellular calcium signaling in human bone marrow-derived mesenchymal stem cells

机译:高细胞外镁抑制人骨髓间充质干细胞中矿化的基质沉积并调节细胞内钙信号传导

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Mesenchymal stem cells (MSCs) have the potential to differentiate into several cell types and provide an attractive source of autologous cells for regenerative medicine. However, their cellular biology is not fully understood. Similar to Ca2+, extracellular Mg2+ plays an important role in the functions of the skeletal system. Here, we examined the effects of extracellular Mg2+ on the deposition of calcium phosphate matrix and Ca2+ signaling with or without ATP stimulation in human bone marrow-derived mesenchymal stem cells (hBMSCs). We found that high extracellular Mg2+ concentration ([Mg2+]e) inhibited extracellular matrix mineralization in hBMSCs in vitro. hBMSCs also produced a dose-dependent decrease in the frequency of calcium oscillations during [Mg 2+]e elevation with a slight suppression on oscillation amplitude. In addition, spontaneous ATP release was inhibited under high [Mg2+]e levels and exogenous ATP addition stimulated oscillation reappear. Taken together, our results indicate that high [Mg 2+]e modulates calcium oscillations via suppression of spontaneous ATP release and inactivates purinergic receptors, resulting in decreased extracellular mineralized matrix deposition in hBMSCs. Therefore, the high magnesium environment created by the rapid corrosion of Mg alloys may result in the dysfunction of calcium-dependent physiology processes and be disadvantageous to hBMSCs physiology.
机译:间充质干细胞(MSC)具有分化为几种细胞类型的潜力,并为再生医学提供了有吸引力的自体细胞来源。但是,他们的细胞生物学尚未完全了解。类似于Ca2 +,细胞外Mg2 +在骨骼系统的功能中起重要作用。在这里,我们检查了人源于骨髓的间充质干细胞(hBMSCs)中细胞外Mg2 +对有或没有ATP刺激的磷酸钙基质沉积和Ca2 +信号传导的影响。我们发现高浓度的细胞外Mg2 +([Mg2 +] e)在体外抑制hBMSCs的细胞外基质矿化。在[Mg 2+] e升高期间,hBMSC还会使钙振荡频率产生剂量依赖性的降低,并且对振荡幅度有轻微的抑制作用。此外,在高[Mg2 +] e水平下自发ATP释放受到抑制,外源ATP添加刺激的振荡重新出现。两者合计,我们的结果表明,高[Mg 2+] e通过抑制自发ATP释放来调节钙振荡,并使嘌呤能受体失活,从而导致hBMSCs中细胞外矿化基质沉积减少。因此,由Mg合金的快速腐蚀产生的高镁环境可能导致钙依赖性生理过程的功能障碍,并且不利于hBMSCs生理。

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