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Mammalian target of rapamycin complex 1-mediated phosphorylation of eukaryotic initiation factor 4E-binding protein 1 requires multiple protein-protein interactions for substrate recognition

机译:雷帕霉素复合物的哺乳动物靶标1介导的真核生物起始因子4E结合蛋白1的磷酸化需要多种蛋白质-蛋白质相互作用才能进行底物识别

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The mammalian target of rapamycin (mTOR) pathway is implicated in a number of human diseases, but the pathway details are not fully understood. Here we elucidate the interactions between various proteins involved in mTOR complex 1 (mTORC1). An in vitro mTORC1 kinase assay approach was used to probe the role of the mTORC1 component Raptor and revealed that certain Raptor mutations disrupt binding to eukaryotic initiation factor 4E-binding protein 1 (4E-BP1) and prevent its subsequent phosphorylation by mTOR. Interestingly, we show that a point mutation in the highly conserved Raptor RNC domain still allows binding to mTOR but prevents Raptor association and mTOR-dependent phosphorylation of 4E-BP1, indicating that this Raptor domain facilitates substrate recognition by mTORC1. This Raptor RNC domain mutant also dominantly inhibits mTORC1 signalling to 4E-BP1, S6K1 and HIF1 alpha in vivo. We further characterise the functions of the mTORC1 signalling (TOS) and RAIP motifs of 4E-BP1, which are involved in substrate recognition by Raptor and phosphorylation by mTORC1. We show that an mTOR mutant, L1460P, responds to insulin even in nutrient-deprived conditions and is resistant to inhibition by inactive RagB-RagC heterodimers that mimic nutrient withdrawal suggesting that this region of mTOR is involved in sensing the permissive amino acid input. We found that FKBP38 inhibits mTOR(L1460P), while the mTOR(E2419K) kinase domain mutant was resistant to FKBP38 inhibition. Finally, we show that activation of mTORC1 by both Rheb and RhebL1 is impaired by FKBP38. Our work demonstrates the value of an in vitro mTORC1 kinase assay to characterise cell signalling components of mTORC1 involved in recognition and phosphotransfer to mTORC1 substrates.
机译:雷帕霉素(mTOR)途径的哺乳动物靶标与许多人类疾病有关,但尚未充分了解该途径的细节。在这里,我们阐明了参与mTOR复合体1(mTORC1)的各种蛋白质之间的相互作用。体外mTORC1激酶测定方法用于探究mTORC1组分Raptor的作用,并揭示某些Raptor突变会破坏与真核起始因子4E结合蛋白1(4E-BP1)的结合并阻止其随后被mTOR磷酸化。有趣的是,我们表明高度保守的Raptor RNC域中的点突变仍允许与mTOR结合,但阻止Raptor缔合和4E-BP1的mTOR依赖性磷酸化,表明该Raptor域促进了mTORC1的底物识别。该Raptor RNC结构域突变体在体内还显着抑制mTORC1信号转导至4E-BP1,S6K1和HIF1α。我们进一步表征了4E-BP1的mTORC1信号传导(TOS)和RAIP图案的功能,它们参与了猛禽的底物识别和mTORC1的磷酸化。我们显示,mTOR突变体L1460P即使在营养缺乏的情况下也能响应胰岛素,并且对模拟营养物撤出的非活性RagB-RagC异二聚体具有抑制作用,这表明mTOR的这一区域参与了感测允许的氨基酸输入。我们发现FKBP38抑制mTOR(L1460P),而mTOR(E2419K)激酶结构域突变体则对FKBP38抑制具有抗性。最后,我们表明,FKBP38削弱了Rheb和RhebL1对mTORC1的激活。我们的工作证明了体外mTORC1激酶测定对表征mTORC1的细胞信号转导成分(涉及识别和磷酸转移至mTORC1底物)的价值。

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