Department of Orthopedic Surgery, Tokyo Medical University, Tokyo, Japan.
Laboratory of piezoelectricity, Kobayasi Institute of Physical Research, Tokyo, Japan.
Bioelectromagnetics. 2024 Jul;45(5):226-234. doi: 10.1002/bem.22501. Epub 2024 Mar 28.
Pulsed electromagnetic field (PEMF) stimulation has been widely applied clinically to promote bone healing; however, its detailed mechanism of action, particularly in endochondral ossification, remains elusive, and long-term stimulation is required for its satisfactory effect. The aim of this study was to investigate the involvement of the mammalian target of rapamycin (mTOR) pathway in chondrocyte differentiation and proliferation using a mouse prechondroblast cell line (ATDC5), and establish an efficient PEMF stimulation strategy for endochondral ossification. The changes in cell differentiation (gene expression levels of aggrecan, type II collagen, and type X collagen) and proliferation (cellular uptake of bromodeoxyuridine [BrdU]) in ATDC5 cells in the presence or absence of rapamycin, an mTOR inhibitor, was measured. The effects of continuous and intermittent PEMF stimulation on changes in cell differentiation and proliferation were compared. Rapamycin significantly suppressed the induction of cell differentiation markers and the cell proliferation activity. Furthermore, only intermittent PEMF stimulation continuously activated the mTOR pathway in ATDC5 cells, significantly promoting cell proliferation. These results demonstrate the involvement of the mTOR pathway in chondrocyte differentiation and proliferation and suggest that intermittent PEMF stimulation could be effective as a stimulus for endochondral ossification during fracture healing process, thereby reducing stimulation time.
脉冲电磁场(PEMF)刺激已广泛应用于临床以促进骨愈合;然而,其确切的作用机制,特别是在软骨内成骨过程中,仍然难以捉摸,且需要长期刺激才能达到满意的效果。本研究旨在利用鼠前软骨细胞系(ATDC5)研究哺乳动物雷帕霉素靶蛋白(mTOR)通路在软骨细胞分化和增殖中的作用,并建立一种有效的用于软骨内成骨的 PEMF 刺激策略。检测了存在或不存在雷帕霉素(mTOR 抑制剂)时 ATDC5 细胞的细胞分化(聚集蛋白聚糖、II 型胶原和 X 型胶原的基因表达水平)和增殖(溴脱氧尿苷[BrdU]摄取)的变化。比较了连续和间歇 PEMF 刺激对细胞分化和增殖变化的影响。雷帕霉素显著抑制了细胞分化标志物的诱导和细胞增殖活性。此外,只有间歇 PEMF 刺激能持续激活 ATDC5 细胞中的 mTOR 通路,显著促进细胞增殖。这些结果表明 mTOR 通路参与软骨细胞的分化和增殖,并提示间歇 PEMF 刺激可能是骨折愈合过程中软骨内成骨的有效刺激物,从而减少刺激时间。