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基因内抑制突变可恢复真核起始因子5B开关II突变体的GTP酶和翻译功能。

Intragenic suppressor mutations restore GTPase and translation functions of a eukaryotic initiation factor 5B switch II mutant.

作者信息

Shin Byung-Sik, Acker Michael G, Maag David, Kim Joo-Ran, Lorsch Jon R, Dever Thomas E

机构信息

NIH, 6 Center Dr., Bldg. 6A, Rm. B1A-03, Bethesda, MD 20892, USA.

出版信息

Mol Cell Biol. 2007 Mar;27(5):1677-85. doi: 10.1128/MCB.01258-06. Epub 2006 Dec 22.

Abstract

Structural studies of GTP-binding proteins identified the Switch I and Switch II elements as contacting the gamma-phosphate of GTP and undergoing marked conformational changes upon GTP versus GDP binding. Movement of a universally conserved Gly at the N terminus of Switch II is thought to trigger the structural rearrangement of this element. Consistently, we found that mutation of this Gly in the Switch II element of the eukaryotic translation initiation factor 5B (eIF5B) from Saccharomyces cerevisiae impaired cell growth and the guanine nucleotide-binding, GTPase, and ribosomal subunit joining activities of eIF5B. In a screen for mutations that bypassed the critical requirement for this Switch II Gly in eIF5B, intragenic suppressors were identified in the Switch I element and at a residue in domain II of eIF5B that interacts with Switch II. The intragenic suppressors restored yeast cell growth and eIF5B nucleotide-binding, GTP hydrolysis, and subunit joining activities. We propose that the Switch II mutation distorts the geometry of the GTP-binding active site, impairing nucleotide binding and the eIF5B domain movements associated with GTP binding. Accordingly, the Switch I and domain II suppressor mutations induce Switch II to adopt a conformation favorable for nucleotide binding and hydrolysis and thereby reestablish coupling between GTP binding and eIF5B domain movements.

摘要

对GTP结合蛋白的结构研究确定了开关I和开关II元件与GTP的γ-磷酸基团接触,并在结合GTP与GDP时发生显著的构象变化。开关II N端一个普遍保守的甘氨酸的移动被认为会触发该元件的结构重排。同样,我们发现酿酒酵母真核翻译起始因子5B(eIF5B)的开关II元件中该甘氨酸的突变会损害细胞生长以及eIF5B的鸟嘌呤核苷酸结合、GTP酶和核糖体亚基结合活性。在筛选绕过eIF5B中该开关II甘氨酸关键需求的突变时,在开关I元件以及eIF5B与开关II相互作用的结构域II中的一个残基处发现了基因内抑制子。这些基因内抑制子恢复了酵母细胞生长以及eIF5B的核苷酸结合、GTP水解和亚基结合活性。我们提出,开关II突变扭曲了GTP结合活性位点的几何结构,损害了核苷酸结合以及与GTP结合相关的eIF5B结构域移动。因此,开关I和结构域II抑制子突变诱导开关II采取有利于核苷酸结合和水解的构象,从而重新建立GTP结合与eIF5B结构域移动之间的偶联。

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