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首页> 外文期刊>The journal of immunology >MAPK, Phosphatidylinositol 3-Kinase, and Mammalian Target of Rapamycin Pathways Converge at the Level of Ribosomal Protein S6 Phosphorylation to Control Metabolic Signaling in CD8 T Cells
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MAPK, Phosphatidylinositol 3-Kinase, and Mammalian Target of Rapamycin Pathways Converge at the Level of Ribosomal Protein S6 Phosphorylation to Control Metabolic Signaling in CD8 T Cells

机译:MAPK,磷脂酰肌醇3-激酶和雷帕霉素途径的哺乳动物靶标收敛在核糖体蛋白S6磷酸化水平上,以控制CD8 T细胞中的代谢信号传导。

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摘要

Ribosomal protein S6 (rpS6) is a key component of the translational machinery in eukaryotic cells and is essential for ribosome biogenesis. rpS6 is phosphorylated on evolutionarily conserved serine residues, and data indicate that rpS6 phosphorylation might regulate cell growth and protein synthesis. Studies in cell lines have shown an important role for the serine kinase mammalian target of rapamycin (mTOR) in rpS6 phosphorylation, further linking rpS6 to control of cellular metabolism. rpS6 is essential in T cells because its deletion in mouse double-positive thymocyte cells results in a complete block in T cell development; however, the signaling pathway leading to rpS6 phosphorylation downstream of TCR stimulation has yet to be fully characterized. We show that maximal TCR-induced rpS6 phosphorylation in CD8 T cells requires both Lck and Fyn activity and downstream activation of PI3K, mTOR, and MEK/ERK MAPK pathways. We demonstrate that there is cross-talk between the PI3K and MAPK pathways as well as PI3K-independent mTOR activity, which result in differential phosphorylation of specific rpS6 serine residues. These results place rpS6 phosphorylation as a point of convergence for multiple crucial signaling pathways downstream of TCR triggering.
机译:核糖体蛋白S6(rpS6)是真核细胞中翻译机制的关键组成部分,对核糖体的生物发生至关重要。 rpS6在进化上保守的丝氨酸残基上被磷酸化,数据表明rpS6磷酸化可能调节细胞生长和蛋白质合成。细胞系研究表明,雷帕霉素的丝氨酸激酶哺乳动物靶标(mTOR)在rpS6磷酸化中具有重要作用,进一步将rpS6连接到细胞代谢的控制上。 rpS6在T细胞中至关重要,因为它在小鼠双阳性胸腺细胞中的缺失会导致T细胞发育的完全阻断。然而,导致TCR刺激下游rpS6磷酸化的信号传导途径尚未得到充分表征。我们显示,CD8 T细胞中最大的TCR诱导的rpS6磷酸化需要Lck和Fyn活性以及PI3K,mTOR和MEK / ERK MAPK通路的下游激活。我们证明,在PI3K和MAPK通路以及不依赖PI3K的mTOR活性之间存在串扰,这导致特定rpS6丝氨酸残基的差异磷酸化。这些结果将rpS6磷酸化作为TCR触发下游多个关键信号通路的汇合点。

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