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首页> 外文期刊>Cell death & disease. >Mechanical stretch-induced osteogenic differentiation of human jaw bone marrow mesenchymal stem cells (hJBMMSCs) via inhibition of the NF-κB pathway
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Mechanical stretch-induced osteogenic differentiation of human jaw bone marrow mesenchymal stem cells (hJBMMSCs) via inhibition of the NF-κB pathway

机译:通过抑制NF-κB途径机械拉伸诱导人下颌骨髓间充质干细胞(hJBMMSCs)的成骨分化

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Severe malocclusion can contribute to several serious dental and physical conditions, such as digestive difficulties, periodontal disease, and severe tooth decay. Orthodontic treatment is mainly used to treat malocclusion. Forces in orthodontic tooth results in bone resorption on the pressure side and bone deposition on the tension side. Osteoblasts have been considered as the key component in bone regeneration on the tension side. However, the underlying mechanisms remain unclear. In this study, we focus on how mechanical stretch regulates the osteogenesis during orthodontic treatment. Human jaw bone marrow mesenchymal stem cells (hJBMMSCs) were isolated from healthy adult donors and cultured in regular medium (control) or osteogenic medium (OS). Under OS culture, hJBMMSCs presented osteogenic differentiation potentials, as evidenced by increased mineralization, enhanced calcium deposition, and upregulated expression of osteogenesis markers (ALP, osterix, and Runx). What’s more, the OS-induced osteogenesis of hJBMMSCs is associated with the dephosphorylation of IKK, activation of IKBα, and phosphorylationucleic accumulation of P65, which all indicated the inhibition of NF-κB activity. Overexpressing P65 in hJBMMSCs, which could constantly activate NF-κB, prevented the osteogenic differentiation in the OS. After that, we applied the Flexcell tension system, which could cause mechanical stretch on cultured hJBMMSCs to mimic the tension forces during tooth movement. Mechanical stretch resulted in 3.5?fold increase of ALP activity and 2.4–fold increase of calcium deposition after 7 days and 21 days treatment, respectively. The expression levels of ALP, Run×2, and Osterix were also significantly upregulated. In the meantime, applying mechanical stretch on OS-cultured hJBMMSCs also dramatically promoted the OS-induced osteogenesis. Both OS and mechanical stretch downregulated NF-κB activity. By overexpressing P65 in hJBMMSCs, neither OS nor mechanical stretch could induce their osteogenesis. These results indicated that, like OS induction, mechanical stretch-facilitated osteogenesis of hJBMMSCs by inhibiting NF-κB in the noninflammatory environments.
机译:严重的错牙合会导致几种严重的牙齿和身体状况,例如消化困难,牙周疾病和严重的蛀牙。正畸治疗主要用于治疗错牙合畸形。正畸牙齿中的力导致压力侧的骨吸收和张力侧的骨沉积。成骨细胞被认为是张力侧骨再生的关键成分。但是,其潜在机制仍不清楚。在这项研究中,我们专注于在正畸治疗期间机械拉伸如何调节成骨作用。从健康的成人供体中分离人颌骨骨髓间充质干细胞(hJBMMSC),并在常规培养基(对照)或成骨培养基(OS)中培养。在OS培养下,hJBMMSCs具有成骨分化潜能,这可通过增加矿化,增强钙沉积和上调成骨标记物(ALP,osterix和Runx)来证明。而且,OS诱导的hJBMMSC的成骨作用与IKK的去磷酸化,IKBα的活化以及P65的磷酸化/核积累有关,均表明NF-κB活性受到抑制。 hJBMMSCs中过表达P65可以持续激活NF-κB,阻止了OS中的成骨分化。之后,我们应用了Flexcell张力系统,该系统可以在培养的hJBMMSC上引起机械拉伸,从而模拟牙齿运动过程中的张力。机械拉伸分别使7天和21天处理后ALP活性增加了3.5倍,钙沉积增加了2.4倍。 ALP,Run×2和Osterix的表达水平也显着上调。同时,在OS培养的hJBMMSCs上施加机械拉伸也极大地促进了OS诱导的成骨作用。 OS和机械拉伸均可下调NF-κB活性。通过在hJBMMSC中过表达P65,OS和机械拉伸均无法诱导其成骨。这些结果表明,像OS诱导一样,在非炎性环境中通过抑制NF-κB,机械拉伸促进了hJBMMSC的成骨。

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