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The effect of pulsed electromagnetic field exposure on osteoinduction of human mesenchymal stem cells cultured on nano-TiO2 surfaces

机译:脉冲电磁场​​暴露对纳米TiO2表面培养的人间充质干细胞骨诱导的影响

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摘要

Human bone marrow-derived mesenchymal stem cells (hBM-MSCs) are considered a great promise in the repair and regeneration of bone. Considerable efforts have been oriented towards uncovering the best strategy to promote stem cells osteogenic differentiation. In previous studies, hBM-MSCs exposed to physical stimuli such as pulsed electromagnetic fields (PEMFs) or directly seeded on nanostructured titanium surfaces (TiO2) were shown to improve their differentiation to osteoblasts in osteogenic condition. In the present study, the effect of a daily PEMF-exposure on osteogenic differentiation of hBM-MSCs seeded onto nanostructured TiO2 (with clusters under 100 nm of dimension) was investigated. TiO2-seeded cells were exposed to PEMF (magnetic field intensity: 2 mT; intensity of induced electric field: 5 mV; frequency: 75 Hz) and examined in terms of cell physiology modifications and osteogenic differentiation. Results showed that PEMF exposure affected TiO2-seeded cells osteogenesis by interfering with selective calcium-related osteogenic pathways, and greatly enhanced hBM-MSCs osteogenic features such as the expression of early/late osteogenic genes and protein production (e.g., ALP, COL-I, osteocalcin and osteopontin) and ALP activity. Finally, PEMF-treated cells resulted to secrete into conditioned media higher amounts of BMP-2, DCN and COL-I than untreated cell cultures. These findings confirm once more the osteoinductive potential of PEMF, suggesting that its combination with TiO2 nanostructured surface might be a great option in bone tissue engineering applications.
机译:人骨髓源间充质干细胞(hBM-MSC)被认为在修复和再生骨骼方面具有广阔的前景。已经进行了相当大的努力以发现促进干细胞成骨分化的最佳策略。在先前的研究中,hBM-MSC暴露于诸如脉冲电磁场​​(PEMF)的物理刺激下或直接接种在纳米结构的钛表面(TiO2)上,在成骨条件下可改善其向成骨细胞的分化。在本研究中,研究了每日PEMF暴露对接种在纳米结构TiO2(簇尺寸小于100 nm)上的hBM-MSCs成骨分化的影响。接种TiO2的细胞暴露于PEMF(磁场强度:2 mT;感应电场强度:5 mV;频率:75 Hz),并进行细胞生理学修饰和成骨分化方面的检查。结果表明,PEMF暴露通过干扰选择性钙相关的成骨途径而影响了TiO2种子细胞的成骨,并大大增强了hBM-MSC的成骨特性,例如早期/晚期成骨基因的表达和蛋白质生成(例如ALP,COL-1 ,骨钙蛋白和骨桥蛋白)和ALP活性。最后,与未处理的细胞培养物相比,经PEMF处理的细胞分泌出更多量的BMP-2,DCN和COL-1进入条件培养基。这些发现再次证实了PEMF的骨诱导潜力,表明其与TiO2纳米结构表面的结合在骨组织工程应用中可能是一个很好的选择。

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