首页> 外文期刊>Biochimica et biophysica acta. Molecular cell research >EIF4F complex disruption causes protein synthesis inhibition during hypoxia in nerve growth factor (NGF)-differentiated PC12 cells
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EIF4F complex disruption causes protein synthesis inhibition during hypoxia in nerve growth factor (NGF)-differentiated PC12 cells

机译:EIF4F复合物破坏导致缺氧期间神经生长因子(NGF)分化的PC12细胞蛋白质合成抑制

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摘要

Poor oxygenation (hypoxia) influences important physiological and pathological situations, including development, ischemia, stroke and cancer. Hypoxia induces protein synthesis inhibition that is primarily regulated at the level of initiation step. This regulation generally takes place at two stages, the phosphorylation of the subunit α of the eukaryotic initiation factor (eIF) 2 and the inhibition of the eIF4F complex availability by dephosphorylation of the inhibitory protein 4E-BP1 (eukaryotic initiation factor 4E-binding protein 1). The contribution of each of them is mainly dependent of the extent of the oxygen deprivation. We have evaluated the regulation of hypoxia-induced translation inhibition in nerve growth factor (NGF)-differentiated PC12 cells subjected to a low oxygen concentration (0.1%) at several times. Our findings indicate that protein synthesis inhibition occurs primarily by the disruption of eIF4F complex through 4E-BP1 dephosphorylation, which is produced by the inhibition of the mammalian target of rapamycin (mTOR) activity via the activation of REDD1 (regulated in development and DNA damage 1) protein in a hypoxia-inducible factor 1 (HIF1)-dependent manner, as well as the translocation of eIF4E to the nucleus. In addition, this mechanism is reinforced by the increase in 4E-BP1 levels, mainly at prolonged times of hypoxia.
机译:氧合不足(缺氧)会影响重要的生理和病理状况,包括发育,局部缺血,中风和癌症。缺氧诱导蛋白质合成抑制,该抑制主要在起始步骤的水平上调节。该调节通常发生在两个阶段,即真核起始因子(eIF)2的亚基α的磷酸化和抑制蛋白4E-BP1(真核起始因子4E结合蛋白1的去磷酸化)对eIF4F复合物可用性的抑制。 )。它们各自的贡献主要取决于缺氧的程度。我们已经评估了低氧诱导的神经生长因子(NGF)分化PC12细胞中低氧诱导的翻译抑制的调节,该PC12细胞多次受到低氧浓度(0.1%)的影响。我们的发现表明,蛋白质合成抑制主要是通过4E-BP1脱磷酸作用破坏eIF4F复合物而产生的,磷酸化作用是通过激活REDD1抑制哺乳动物雷帕霉素(mTOR)靶标而产生的(调节发育和DNA损伤1)。 )蛋白(依赖缺氧诱导因子1(HIF1)的方式),以及eIF4E易位至细胞核。此外,主要是在缺氧时间延长的情况下,4E-BP1水平的增加增强了这种机制。

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