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首页> 外文期刊>Molecular and Cellular Biology >The In Vivo Activity of Ime1, the Key Transcriptional Activator of Meiosis-Specific Genes in Saccharomyces cerevisiae, Is Inhibited by the Cyclic AMP/Protein Kinase A Signal Pathway through the Glycogen Synthase Kinase 3-β Homolog Rim11
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The In Vivo Activity of Ime1, the Key Transcriptional Activator of Meiosis-Specific Genes in Saccharomyces cerevisiae, Is Inhibited by the Cyclic AMP/Protein Kinase A Signal Pathway through the Glycogen Synthase Kinase 3-β Homolog Rim11

机译:Ime1的体内活性,啤酒酵母中减数分裂特定基因的关键转录激活因子,通过糖原合酶激酶3-β同源Rim11的循环AMP /蛋白质激酶A信号途径被抑制。

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Phosphorylation is the main mode by which signals are transmitted to key regulators of developmental pathways. The glycogen synthase kinase 3 family plays pivotal roles in the development and well-being of all eukaryotic organisms. Similarly, the budding yeast homolog Rim11 is essential for the exit of diploid cells from the cell cycle and for entry into the meiotic developmental pathway. In this report we show that in vivo, in cells grown in a medium promoting vegetative growth with acetate as the sole carbon source (SA medium), Rim11 phosphorylates Ime1, the master transcriptional activator required for entry into the meiotic cycle and for the transcription of early meiosis-specific genes. We demonstrate that in the presence of glucose, the kinase activity of Rim11 is inhibited. This inhibition could be due to phosphorylation on Ser-5, Ser-8, and/or Ser-12 because in the rim11S5AS8AS12A mutant, Ime1 is incorrectly phosphorylated in the presence of glucose and cells undergo sporulation. We further show that this nutrient signal is transmitted to Rim11 and consequently to Ime1 by the cyclic AMP/protein kinase A signal transduction pathway. Ime1 is phosphorylated in SA medium on at least two residues, Tyr-359 and Ser-302 and/or Ser-306. Ser-302 and Ser-306 are part of a consensus site for the mammalian homolog of Rim11, glycogen synthase kinase 3-β. Phosphorylation on Tyr-359 but not Ser-302 or Ser-306 is essential for the transcription of early meiosis-specific genes and sporulation. We show that Tyr-359 is phosphorylated by Rim11.
机译:磷酸化是信号传递到发育途径关键调节剂的主要方式。糖原合酶激酶3家族在所有真核生物的发育和健康中起着关键作用。同样,发芽的酵母同源物Rim11对于二倍体细胞从细胞周期中退出以及进入减数分裂发育途径至关重要。在本报告中,我们显示了体内,在以醋酸盐为唯一碳源的促进营养生长的培养基(SA培养基)中生长的细胞中,Rim11使Ime1磷酸化,Ime1是进入减数分裂循环和转录的必需转录激活因子。早期减数分裂特异的基因。我们证明,在葡萄糖的存在下,Rim11的激酶活性受到抑制。这种抑制作用可能是由于Ser-5,Ser-8和/或Ser-12上的磷酸化所致,因为在 rim11S5AS8AS12A 突变体中,Ime1在葡萄糖存在下被错误地磷酸化,并且细胞会形成孢子。我们进一步表明,该营养信号通过环状AMP /蛋白激酶A信号转导途径传递给Rim11,从而传递给Ime1。 Ime1在SA培养基中至少两个残基Tyr-359和Ser-302和/或Ser-306上被磷酸化。 Ser-302和Ser-306是Rim11糖原合酶激酶3-β的哺乳动物同源物共有位点的一部分。 Tyr-359而不是Ser-302或Ser-306的磷酸化对于早期减数分裂特异基因的转录和孢子形成至关重要。我们表明,Tyr-359被Rim11磷酸化。

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