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Ribosome in the balance: Structural equilibrium ensures translational fidelity and proper gene expression.

机译:平衡的核糖体:结构平衡确保翻译保真度和适当的基因表达。

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摘要

At equilibrium, empty ribosomes freely transit between the rotated and un-rotated states. In translation elongation, the binding of two translation elongation factors to the same general region of the ribosome stabilizes them in one of the two extremes of intersubunit rotation; rotated or unrotated. These stabilized states are resolved by expenditure energy in the form of GTP hydrolysis. Here, mutants of the early assembling integral ribosomal protein uL2 (universal L2) are used to test the generality of this hypothesis. A prior study employing mutants of a late assembling peripheral ribosomal protein suggested that ribosome rotational status determines its affinity for elongation factors, and hence translational fidelity and gene expression. rRNA structure probing analyses reveal that mutations in the uL2 B7b bridge region shift the equilibrium towards the rotated state, propagating rRNA structural changes to all of the functional centers of ribosome. Shift in structural equilibrium affects the biochemical properties of ribosomes: rotated ribosomes favor binding of the eEF2 translocase and disfavor that of the elongation ternary complex. This manifests as specific translational fidelity defects, impacting the expression of genes involved in telomere maintenance. A model is presented here describing how cyclic intersubunit rotation ensures the unidirectionality of translational elongation, and how perturbation of rotational equilibrium affects specific aspects of translational fidelity and cellular gene expression.
机译:在平衡时,空核糖体在旋转状态和非旋转状态之间自由过渡。在翻译延伸中,两个翻译延伸因子与核糖体相同大体区域的结合使它们稳定在亚单位间旋转的两个极端之一中。旋转或不旋转。这些稳定状态通过消耗能量以GTP水解的形式解决。在这里,早期组装的完整核糖体蛋白uL2(通用L2)的突变体用于检验这一假设的普遍性。使用晚期组装的外周核糖体蛋白的突变体的先前研究表明,核糖体旋转状态决定了其对延伸因子的亲和力,并因此决定了翻译保真度和基因表达。 rRNA结构探测分析表明,uL2 B7b桥区域的突变使平衡向旋转状态移动,从而使rRNA结构变化传播到核糖体的所有功能中心。结构平衡的变化影响核糖体的生化特性:旋转的核糖体有利于eEF2转移酶的结合,而不利于延伸三元复合物的结合。这表现为特定的翻译保真度缺陷,影响端粒维持所涉及的基因的表达。这里介绍一个模型,描述循环亚基间的旋转如何确保翻译延伸的单向性,以及旋转平衡的扰动如何影响翻译保真度和细胞基因表达的特定方面。

著录项

  • 作者

    Musalgaonkar, Sharmishtha.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Molecular biology.;Cellular biology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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