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A Novel Single Pulsed Electromagnetic Field Stimulates Osteogenesis of Bone Marrow Mesenchymal Stem Cells and Bone Repair

机译:新型单脉冲电磁场​​刺激骨髓间充质干细胞成骨和骨修复。

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摘要

Pulsed electromagnetic field (PEMF) has been successfully applied to accelerate fracture repair since 1979. Recent studies suggest that PEMF might be used as a nonoperative treatment for the early stages of osteonecrosis. However, PEMF treatment requires a minimum of ten hours per day for the duration of the treatment. In this study, we modified the protocol of the single-pulsed electromagnetic field (SPEMF) that only requires a 3-minute daily treatment. In the in vitro study, cell proliferation and osteogenic differentiation was evaluated in the hBMSCs. In the in vivo study, new bone formation and revascularization were evaluated in the necrotic bone graft. Results from the in vitro study showed no significant cytotoxic effects on the hBMSCs after 5 days of SPEMF treatment (1 Tesla, 30 pulses per day). hBMSC proliferation was enhanced in the SPEMF-treated groups after 2 and 4 days of treatment. The osteogenic differentiation of hBMSCs was significantly increased in the SPEMF-treated groups after 3–7 days of treatment. Mineralization also increased after 10, 15, 20, and 25 days of treatment in SPEMF-treated groups compared to the control group. The 7-day short-course treatment achieved similar effects on proliferation and osteogenesis as the 25-day treatment. Results from the in vivo study also demonstrated that both the 7-day and 25-day treatments of SPEMF increased callus formation around the necrotic bone and also increased new vessel formation and osteocyte numbers in the grafted necrotic bone at the 2nd and 4th weeks after surgery. In conclusion, the newly developed SPEMF accelerates osteogenic differentiation of cultured hBMSCs and enhances bone repair, neo-vascularization, and cell growth in necrotic bone in mice. The potential clinical advantage of the SPEMF is the short daily application and the shorter treatment course. We suggest that SPEMF may be used to treat fractures and the early stages of osteonecrosis.
机译:自1979年以来,脉冲电磁场​​(PEMF)已成功应用于加速骨折修复。最近的研究表明,PEMF可能被用作骨坏死早期的非手术治疗。但是,PEMF治疗在治疗期间每天至少需要十个小时。在这项研究中,我们修改了仅需每天处理3分钟的单脉冲电磁场​​(SPEMF)的协议。在体外研究中,在hBMSC中评估了细胞增殖和成骨分化。在体内研究中,在坏死骨移植物中评估了新的骨形成和血运重建。体外研究的结果显示,SPEMF治疗5天(1 Tesla,每天30次脉冲)后,对hBMSC没有明显的细胞毒性作用。在治疗2天和4天后,SPEMF治疗组的hBMSC增殖得到增强。治疗3-7天后,SPEMF治疗组的hBMSCs的成骨分化显着增加。与对照组相比,SPEMF治疗组在治疗10、15、20和25天后矿化也增加了。 7天的短疗程治疗对增殖和成骨的作用与25天的治疗相似。体内研究的结果还表明,SPEMF的7天和25天治疗均增加了坏死骨周围的愈伤组织形成,并且还增加了第2次 / sup>和术后4 周。总之,新开发的SPEMF可以加速培养的hBMSC的成骨分化,并增强小鼠坏死骨的骨修复,新血管形成和细胞生长。 SPEMF的潜在临床优势是每天使用时间短,治疗过程短。我们建议SPEMF可用于治疗骨折和骨坏死的早期阶段。

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