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Regulation of Osteoblast Differentiation and Iron Content in MC3T3-E1 Cells by Static Magnetic Field with Different Intensities

机译:不同强度的静磁场对MC3T3-E1细胞成骨细胞分化和铁含量的调控

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摘要

Many studies have indicated that static magnetic fields (SMFs) have positive effects on bone tissue, including bone formation and bone healing process. Evaluating the effects of SMFs on bone cell (especially osteoblast) function and exploring the mechanism, which is critical for understanding the possible risks or benefits from SMFs to the balance of bone remodeling. Iron and magnetic fields have the natural relationship, and iron is an essential element for normal bone metabolism. Iron overload or deficiency can cause severe bone disorders including osteoporosis. However, there are few reports regarding the role of iron in the regulation of bone formation under SMFs. In this study, hypomagnetic field (HyMF) of 500 nT, moderate SMF (MMF) of 0.2 T, and high SMF (HiMF) of 16 T were used to investigate how osteoblast (MC3T3-E1) responses to SMFs and iron metabolism of osteoblast under SMFs. The results showed that SMFs did not pose severe toxic effects on osteoblast growth. During cell proliferation, iron content of osteoblast MC3T3-E1 cells was decreased in HyMF, but was increased in MMF and HiMF after exposure for 48 h. Compared to untreated control (i.e., geomagnetic field, GMF), HyMF and MMF exerted deleterious effects on osteoblast differentiation by simultaneously retarding alkaline phosphatase (ALP) activity, mineralization and calcium deposition. However, when exposed to HiMF of 16 T, the differentiation potential showed the opposite tendency with enhanced mineralization. Iron level was increased in HyMF, constant in MMF and decreased in HiMF during cell differentiation. In addition, the mRNA expression of transferrin receptor 1 (TFR1) was promoted by HyMF but was inhibited by HiMF. At the same time, HiMF of 16 T and MMF of 0.2 T increased the expression of ferroportin 1 (FPN1). In conclusion, these results indicated that osteoblast differentiation can be regulated by altering the strength of the SMF, and iron is possibly involved in this process.
机译:许多研究表明,静磁场(SMF)对骨骼组织具有积极作用,包括骨骼形成和骨骼愈合过程。评估SMF对骨细胞(尤其是成骨细胞)功能的影响并探索其机制,这对于了解SMF对骨骼重构的平衡可能产生的风险或益处至关重要。铁和磁场具有天然的关系,铁是正常骨骼代谢所必需的元素。铁过载或缺乏会导致严重的骨疾病,包括骨质疏松症。然而,关于铁在SMFs下调节骨形成的作用的报道很少。在这项研究中,使用500 nT的低磁场(HyMF),0.2 T的中度SMF(MMF)和16 T的高SMF(HiMF)来研究成骨细胞(MC3T3-E1)如何响应SMF和成骨细胞的铁代谢在SMF下。结果表明,SMF对成骨细胞的生长没有严重的毒性作用。在细胞增殖过程中,暴露48小时后,HyMF中成骨细胞MC3T3-E1细胞的铁含量降低,但MMF和HiMF中的铁含量增加。与未处理的对照(即地磁场,GMF)相比,HyMF和MMF通过同时阻止碱性磷酸酶(ALP)活性,矿化和钙沉积,对成骨细胞分化产生有害影响。但是,当暴露于16T的HiMF时,分化潜力显示出与矿化作用增强相反的趋势。在细胞分化过程中,HyMF中的铁含量升高,MMF中的铁含量恒定,而HiMF中的铁含量降低。此外,转铁蛋白受体1(TFR1)的mRNA表达被HyMF促进,但被HiMF抑制。同时,HiMF为16T和MMF为0.2T增加了铁转运蛋白1(FPN1)的表达。总之,这些结果表明,成骨细胞的分化可以通过改变SMF的强度来调节,铁可能参与了这一过程。

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