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A Ca2+–calmodulin–eEF2K–eEF2 signalling cascade, but not AMPK, contributes to the suppression of skeletal muscle protein synthesis during contractions

机译:Ca2 + –钙调​​蛋白–eEF2K–eEF2信号级联,但不抑制AMPK,有助于抑制收缩过程中骨骼肌蛋白的合成

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摘要

Skeletal muscle protein synthesis rate decreases during contractions but the underlying regulatory mechanisms are poorly understood. It was hypothesized that there would be a coordinated regulation of eukaryotic elongation factor 2 (eEF2) and eukaryotic initiation factor 4E-binding protein 1 (4EBP1) phosphorylation by signalling cascades downstream of rises in intracellular [Ca2+] and decreased energy charge via AMP-activated protein kinase (AMPK) in contracting skeletal muscle. When fast-twitch skeletal muscles were contracted ex vivo using different protocols, the suppression of protein synthesis correlated more closely with changes in eEF2 than 4EBP1 phosphorylation. Using a combination of Ca2+ release agents and ATPase inhibitors it was shown that the 60–70% suppression of fast-twitch skeletal muscle protein synthesis during contraction was equally distributed between Ca2+ and energy turnover-related mechanisms. Furthermore, eEF2 kinase (eEF2K) inhibition completely blunted increases in eEF2 phosphorylation and partially blunted (i.e. 30–40%) the suppression of protein synthesis during contractions. The 3- to 5-fold increase in skeletal muscle eEF2 phosphorylation during contractions in situ was rapid and sustained and restricted to working muscle. The increase in eEF2 phosphorylation and eEF2K activation were downstream of Ca2+–calmodulin (CaM) but not other putative activating factors such as a fall in intracellular pH or phosphorylation by protein kinases. Furthermore, blunted protein synthesis and 4EBP1 dephosphorylation were unrelated to AMPK activity during contractions, which was exemplified by normal blunting of protein synthesis during contractions in muscles overexpressing kinase-dead AMPK. In summary, in fast-twitch skeletal muscle, the inhibition of eEF2 activity by phosphorylation downstream of Ca2+–CaM–eEF2K signalling partially contributes to the suppression of protein synthesis during exercise/contractions.
机译:收缩过程中骨骼肌蛋白质合成速率下降,但对潜在的调节机制了解甚少。假设通过信号转导细胞内[Ca2 +]升高和通过AMP激活的降低的能量电荷下游的级联反应,将对真核生物延伸因子2(eEF2)和真核生物起始因子4E结合蛋白1(4EBP1)磷酸化进行协调调节。收缩骨骼肌中的蛋白激酶(AMPK)。当快速抽搐的骨骼肌使用不同的方法离体收缩时,与4EBP1磷酸化相比,蛋白质合成的抑制与eEF2的变化更紧密相关。通过结合使用Ca2 +脱模剂和ATPase抑制剂,可以看出,在收缩过程中,快肌骨骼肌蛋白质合成的60-70%抑制在Ca2 +和能量转换相关的机制之间平均分配。此外,eEF2激酶(eEF2K)的抑制作用完全抑制了eEF2磷酸化的增加,部分抑制了收缩过程中蛋白质合成的抑制作用(即30-40%)。骨骼肌eEF2磷酸化在原位收缩过程中增加了3到5倍,而且迅速且持续,并且仅限于工作肌肉。 eEF2磷酸化和eEF2K激活的增加是在Ca2 + –钙调​​蛋白(CaM)的下游,而不是其他假定的激活因子,例如细胞内pH下降或蛋白激酶的磷酸化。此外,钝化的蛋白质合成和4EBP1去磷酸化与收缩过程中的AMPK活性无关,这可以通过过度表达激酶死亡的AMPK肌肉收缩期间蛋白质合成的正常钝化来说明。总之,在快速抽搐的骨骼肌中,Ca2 + –CaM–eEF2K信号下游的磷酸化对eEF2活性的抑制部分有助于运动/收缩过程中蛋白质合成的抑制。

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