首页> 外文期刊>Nucleic acids research >Thiostrepton inhibits stable 70S ribosome binding and ribosome-dependent GTPase activation of elongation factor G and elongation factor 4
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Thiostrepton inhibits stable 70S ribosome binding and ribosome-dependent GTPase activation of elongation factor G and elongation factor 4

机译:硫排蛋白抑制延伸因子G和延伸因子4的稳定的70S核糖体结合和依赖核糖体的GTPase活化

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摘要

Thiostrepton, a macrocyclic thiopeptide antibiotic, inhibits prokaryotic translation by interfering with the function of elongation factor G (EF-G). Here, we have used 70S ribosome binding and GTP hydrolysis assays to study the effects of thiostrepton on EF-G and a newly described translation factor, elongation factor 4 (EF4). In the presence of thiostrepton, ribosome-dependent GTP hydrolysis is inhibited for both EF-G and EF4, with IC(50) values equivalent to the 70S ribosome concentration (0.15?μM). Further studies indicate the mode of thiostrepton inhibition is to abrogate the stable binding of EF-G and EF4 to the 70S ribosome. In support of this model, an EF-G truncation variant that does not possess domains IV and V was shown to possess ribosome-dependent GTP hydrolysis activity that was not affected by the presence of thiostrepton (100?μM). Lastly, chemical footprinting was employed to examine the nature of ribosome interaction and tRNA movements associated with EF4. In the presence of non-hydrolyzable GTP, EF4 showed chemical protections similar to EF-G and stabilized a ratcheted state of the 70S ribosome. These data support the model that thiostrepton inhibits stable GTPase binding to 70S ribosomal complexes, and a model for the first step of EF4-catalyzed reverse-translocation is presented.
机译:Thiostrepton是一种大环硫肽抗生素,通过干扰延伸因子G(EF-G)的功能来抑制原核生物翻译。在这里,我们已使用70S核糖体结合和GTP水解试验研究了硫链丝菌素对EF-G和新描述的翻译因子延伸因子4(EF4)的影响。在存在硫代链霉菌素的情况下,EF-G和EF4均受核糖体依赖性GTP水解的抑制,IC(50)值等于70S核糖体浓度(0.15?M)。进一步的研究表明,巯基链霉菌素抑制的模式是消除EF-G和EF4与70S核糖体的稳定结合。为了支持该模型,显示了不具有域IV和V的EF-G截短变体具有核糖体依赖性GTP水解活性,该活性不受硫链糖蛋白(> 100?μM)的影响。最后,化学足迹法用于检查核糖体相互作用和与EF4相关的tRNA运动的性质。在不可水解的GTP存在下,EF4显示出与EF-G相似的化学保护,并稳定了70S核糖体的棘轮状态。这些数据支持硫代链霉菌抑制稳定的GTPase结合70S核糖体复合物的模型,并提出了EF4催化逆转第一步的模型。

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