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BMP2 and mechanical loading cooperatively regulate immediate early signalling events in the BMP pathway

机译:BMP2和机械负荷共同调节BMP途径中的即时早期信号事件

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Background Efficient osteogenic differentiation is highly dependent on coordinated signals arising from growth factor signalling and mechanical forces. Bone morphogenetic proteins ( BMPs ) are secreted proteins that trigger Smad and non-Smad pathways and thereby influence transcriptional and non-transcriptional differentiation cues. Crosstalk at multiple levels allows for promotion or attenuation of signalling intensity and specificity. Similar to BMPs , mechanical stimulation enhances bone formation. However, the molecular mechanism by which mechanical forces crosstalk to biochemical signals is still unclear. Results Here, we use a three-dimensional bioreactor system to describe how mechanical forces are integrated into the BMP pathway. Time-dependent phosphorylation of Smad, mitogen-activated protein kinases and Akt in human fetal osteoblasts was investigated under loading and/or BMP2 stimulation conditions. The phosphorylation of R-Smads is increased both in intensity and duration under BMP2 stimulation with concurrent mechanical loading. Interestingly, the synergistic effect of both stimuli on immediate early Smad phosphorylation is reflected in the transcription of only a subset of BMP target genes, while others are differently affected. Together this results in a cooperative regulation of osteogenesis that is guided by both signalling pathways. Conclusions Mechanical signals are integrated into the BMP signalling pathway by enhancing immediate early steps within the Smad pathway, independent of autocrine ligand secretion. This suggests a direct crosstalk of both mechanotransduction and BMP signalling, most likely at the level of the cell surface receptors. Furthermore, the crosstalk of both pathways over longer time periods might occur on several signalling levels.
机译:背景有效的成骨分化高度依赖于生长因子信号传导和机械力产生的协调信号。骨形态发生蛋白(BMP)是分泌蛋白,可触发Smad和非Smad途径,从而影响转录和非转录分化线索。多个级别的串扰可促进或减弱信号强度和特异性。与BMP相似,机械刺激可增强骨骼形成。但是,机械力与生化信号串扰的分子机制仍不清楚。结果在这里,我们使用三维生物反应器系统来描述机械力如何整合到BMP途径中。在加载和/或BMP2刺激条件下,研究了人类胎儿成骨细胞中Smad,促分裂原激活蛋白激酶和Akt的时间依赖性磷酸化。在同时机械负荷的情况下,在BMP2刺激下,R-Smads的磷酸化强度和持续时间均增加。有趣的是,两种刺激对立即早期Smad磷酸化的协同作用仅反映在BMP靶基因的一个子集的转录中,而其他的则受到不同的影响。两者共同导致了成骨作用的协同调节,该协同调节受两种信号通路的指导。结论机械信号通过增强Smad途径中的早期早期步骤而整合到BMP信号途径中,而与自分泌配体的分泌无关。这表明机械转导和BMP信号的直接串扰,很可能是在细胞表面受体的水平上。此外,在更长的时间段内,这两个路径的串扰可能会在几个信令级别上发生。

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