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The molecular mechanics of start site selection during eukaryotic translation initiation.

机译:真核翻译起始过程中起始位点选择的分子力学。

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摘要

During eukaryotic translation initiation, ribosomal pre-initiation complexes scan the 5' untranslated region of the mRNA in search of the correct site at which to begin protein synthesis. Recognition of an AUG codon triggers irreversible changes in the complex, committing the ribosome to beginning translation at that point in the mRNA. Because this sets the reading frame, fidelity at this step is absolutely critical for proper gene expression. While yeast genetics and qualitative biochemistry have identified eukaryotic initiation factors (eIFs) 1, 1A, 2 and 5 as key players, the molecular mechanisms by which they work together to ensure fidelity in start site selection have remained mysterious.; We have reconstituted translation initiation in vitro from purified S. cerevisiae components. This system allows us to couple the power of yeast genetics and molecular biology with high-resolution, quantitative biochemical and biophysical approaches. By utilizing a number of novel fluorescence-based techniques, we have discovered that eIFs 1 and 1A interact energetically when bound to the ribosome. We have also discovered that recognition of an AUG codon by the pre-initiation complex triggers a conformational change that ejects eIF1 from the complex. In collaboration with my colleague, Mikkel Algire, we were able to demonstrate that this event facilitates the first irreversible step in the pathway, release of inorganic phosphate (Pi) after GTP hydrolysis by eIF2.; Additionally, by quantitatively analyzing the interactions between eIF1, eIF5 and mRNA within the 43S complex, we have demonstrated that recognition of an AUG codon triggers an interaction between the C-terminal domain of eIF1A and eIF5 that causes a conformational change in the complex. Our data suggest that this conformational change may serve to prevent further scanning once an AUG codon has been located, providing time for downstream events such as eIF1/Pi release to occur. Together these studies have provided significant insight into the mechanisms by which eIFs 1, 1A, 5 and 2 work together to ensure fidelity in start site selection during eukaryotic translation initiation.
机译:在真核翻译起始过程中,核糖体预起始复合物扫描mRNA的5'非翻译区,以寻找开始蛋白质合成的正确位点。识别AUG密码子会触发复合物中不可逆的变化,使核糖体开始在mRNA的该点开始翻译。因为这设置了阅读框架,所以在这一步进行保真对于正确的基因表达绝对至关重要。虽然酵母遗传学和定性生物化学已将真核起始因子(eIFs)1、1A,2和5鉴定为关键参与者,但它们共同发挥作用以确保起始位点选择的保真度的分子机制仍然是个谜。我们已经从纯化的酿酒酵母成分中重建了体外翻译起始。该系统使我们能够将酵母遗传学和分子生物学的力量与高分辨率,定量生化和生物物理方法相结合。通过利用许多新颖的基于荧光的技术,我们发现eIF 1和1A在与核糖体结合时会发生能量相互作用。我们还发现,启动前复合物识别AUG密码子会触发构象变化,从而从复合物中弹出eIF1。与我的同事Mikkel Algire合作,我们能够证明该事件促进了途径的第一步不可逆转的步骤,即eIF2水解GTP后释放无机磷酸盐(Pi)。此外,通过定量分析43S复合物中eIF1,eIF5和mRNA之间的相互作用,我们证明了AUG密码子的识别会触发eIF1A和eIF5的C末端结构域之间的相互作用,从而引起复合物中的构象变化。我们的数据表明,一旦找到AUG密码子,这种构象变化可能会阻止进一步的扫描,从而为下游事件(例如eIF1 / Pi释放)的发生提供了时间。这些研究共同为eIF 1、1A,5和2协同工作以确保真核翻译起始过程中起始位点选择的保真性机制提供了重要见解。

著录项

  • 作者

    Maag, David.;

  • 作者单位

    The Johns Hopkins University.;

  • 授予单位 The Johns Hopkins University.;
  • 学科 Chemistry Biochemistry.; Biology Molecular.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 212 p.
  • 总页数 212
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;分子遗传学;
  • 关键词

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