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Mechanical Stimulation Induces mTOR Signaling via an ERK-Independent Mechanism: Implications for a Direct Activation of mTOR by Phosphatidic Acid

机译:通过ERK-独立的机制机械刺激诱导mTOR信号:对由磷脂酸的mTOR的直接激活

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摘要

Signaling by mTOR is a well-recognized component of the pathway through which mechanical signals regulate protein synthesis and muscle mass. However, the mechanisms involved in the mechanical regulation of mTOR signaling have not been defined. Nevertheless, recent studies suggest that a mechanically-induced increase in phosphatidic acid (PA) may be involved. There is also evidence which suggests that mechanical stimuli, and PA, utilize ERK to induce mTOR signaling. Hence, we reasoned that a mechanically-induced increase in PA might promote mTOR signaling via an ERK-dependent mechanism. To test this, we subjected mouse skeletal muscles to mechanical stimulation in the presence or absence of a MEK/ERK inhibitor, and then measured several commonly used markers of mTOR signaling. Transgenic mice expressing a rapamycin-resistant mutant of mTOR were also used to confirm the validity of these markers. The results demonstrated that mechanically-induced increases in p70s6k T389 and 4E-BP1 S64 phosphorylation, and unexpectedly, a loss in total 4E-BP1, were fully mTOR-dependent signaling events. Furthermore, we determined that mechanical stimulation induced these mTOR-dependent events, and protein synthesis, through an ERK-independent mechanism. Similar to mechanical stimulation, exogenous PA also induced mTOR-dependent signaling via an ERK-independent mechanism. Moreover, PA was able to directly activate mTOR signaling in vitro. Combined, these results demonstrate that mechanical stimulation induces mTOR signaling, and protein synthesis, via an ERK-independent mechanism that potentially involves a direct interaction of PA with mTOR. Furthermore, it appears that a decrease in total 4E-BP1 may be part of the mTOR-dependent mechanism through which mechanical stimuli activate protein synthesis.
机译:mTOR信号是途径中公认的组成部分,机械信号通过该途径调节蛋白质合成和肌肉质量。但是,尚未定义参与mTOR信号的机械调节的机制。然而,最近的研究表明,可能涉及机械诱导的磷脂酸(PA)的增加。也有证据表明机械刺激和PA利用ERK诱导mTOR信号传导。因此,我们认为机械诱导的PA升高可能通过ERK依赖性机制促进mTOR信号传导。为了测试这一点,我们在有或没有MEK / ERK抑制剂的情况下对小鼠骨骼肌进行了机械刺激,然后测量了mTOR信号转导的几种常用标记。表达mTOR的雷帕霉素抗性突变体的转基因小鼠也用于确认这些标记的有效性。结果表明,机械诱导的p70 s6k T389和4E-BP1 S64磷酸化的增加以及总的4E-BP1的丢失是完全依赖于mTOR的信号转导事件。此外,我们确定机械刺激通过独立于ERK的机制诱导了这些mTOR依赖性事件和蛋白质合成。与机械刺激相似,外源性PA也通过非ERK依赖性机制诱导mTOR依赖性信号传导。此外,PA能够在体外直接激活mTOR信号传导。综合起来,这些结果表明机械刺激通过独立于ERK的机制诱导mTOR信号传导和蛋白质合成,这可能涉及PA与mTOR的直接相互作用。此外,似乎总4E-BP1的减少可能是mTOR依赖机制的一部分,通过该机制机械刺激可以激活蛋白质合成。

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