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首页> 外文期刊>Genes and Development: a Journal Devoted to the Molecular Analysis of Gene Expression in Eukaryotes, Prokaryotes, and Viruses >Activation of MAPK overrides the termination of myelin growth and replaces Nrg1/ErbB3 signals during Schwann cell development and myelination
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Activation of MAPK overrides the termination of myelin growth and replaces Nrg1/ErbB3 signals during Schwann cell development and myelination

机译:MAPK的激活覆盖了髓磷脂生长的终止,并在雪旺氏细胞发育和髓鞘形成过程中取代了Nrg1 / ErbB3信号。

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摘要

Myelination depends on the synthesis of large amounts of myelin transcripts and proteins and is controlled by Nrg1/ErbB/Shp2 signaling. We developed a novel pulse labeling strategy based on stable isotope labeling with amino acids in cell culture (SILAC) to measure the dynamics of myelin protein production in mice. We found that protein synthesis is dampened in the maturing postnatal peripheral nervous system, and myelination then slows down. Remarkably, sustained activation of MAPK signaling by expression of the Mek1DD allele in mice overcomes the signals that end myelination, resulting in continuous myelin growth. MAPK activation leads to minor changes in transcript levels but massively up-regulates protein production. Pharmacological interference in vivo demonstrates that the effects of activated MAPK signaling on translation are mediated by mTORindependent mechanisms but in part also by mTOR-dependent mechanisms. Previous work demonstrated that loss of ErbB3/Shp2 signaling impairs Schwann cell development and disrupts the myelination program. We found that activated MAPK signaling strikingly compensates for the absence of ErbB3 or Shp2 during Schwann cell development and myelination.
机译:髓鞘形成取决于大量的髓鞘转录物和蛋白质的合成,并受Nrg1 / ErbB / Shp2信号传导的控制。我们基于细胞培养物中氨基酸的稳定同位素标记(SILAC),开发了一种新颖的脉冲标记策略,以测量小鼠髓磷脂蛋白产生的动力学。我们发现成熟的产后外周神经系统的蛋白质合成受到抑制,然后髓鞘形成减慢。值得注意的是,通过在小鼠中表达Mek1DD等位基因来持续激活MAPK信号,可以克服终止髓鞘形成的信号,从而导致髓鞘持续生长。 MAPK激活导致转录水平发生微小变化,但会大量上调蛋白质产量。体内药理学干预表明,激活的MAPK信号转导对翻译的影响是由mTOR依赖性机制介导的,但也部分由mTOR依赖性机制介导。先前的工作表明,ErbB3 / Shp2信号的缺失会损害雪旺氏细胞的发育并破坏髓鞘形成程序。我们发现活化的MAPK信号显着补偿了雪旺细胞发育和髓鞘形成过程中ErbB3或Shp2的缺失。

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