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Aminoglycoside ribosome interactions reveal novel conformational states at ambient temperature

机译:氨基糖苷核糖体相互作用在环境温度下揭示了新型构象状态

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摘要

The bacterial 30S ribosomal subunit is a primary antibiotic target. Despite decades of discovery, the mechanisms by which antibiotic binding induces ribosomal dysfunction are not fully understood. Ambient temperature crystallographic techniques allow more biologically relevant investigation of how local antibiotic binding site interactions trigger global subunit rearrangements that perturb protein synthesis. Here, the structural effects of 2-deoxystreptamine (paromomycin and sisomicin), a novel sisomicin derivative, N1-methyl sulfonyl sisomicin (N1MS) and the non-deoxystreptamine (streptomycin) aminoglycosides on the ribosome at ambient and cryogenic temperatures were examined. Comparative studies led to three main observations. First, individual aminoglycoside-ribosome interactions in the decoding center were similar for cryogenic versus ambient temperature structures. Second, analysis of a highly conserved GGAA tetraloop of h45 revealed aminoglycoside-specific conformational changes, which are affected by temperature only for N1MS. We report the h44-h45 interface in varying states, i.e. engaged, disengaged and in equilibrium. Third, we observe aminoglycoside-induced effects on 30S domain closure, including a novel intermediary closure state, which is also sensitive to temperature. Analysis of three ambient and five cryogenic crystallography datasets reveal a correlation between h44-h45 engagement and domain closure. These observations illustrate the role of ambient temperature crystallography in identifying dynamic mechanisms of ribosomal dysfunction induced by local drug-binding site interactions. Together, these data identify tertiary ribosomal structural changes induced by aminoglycoside binding that provides functional insight and targets for drug design.
机译:细菌30s核糖体亚基是一次抗生素靶标。尽管发现了几十年的发现,但抗生素结合诱导核糖体功能障碍的机制不完全理解。环境温度晶体晶体技术允许对局部抗生素结合位点相互作用的更具生物学上相关的研究触发扰动蛋白质合成的全局亚基重排。在此,研究了在环境和低温温度下,研究了2-脱氧霉素(Paromomycin和Sisomicin),新的Sisomicin衍生物,N1-甲磺酰基Sisomicin(N1MS)和非脱氧霉素(Stexystroptamin(Strexystromincin(Strexystroptamin(Strexystroptamin(Strexystroptamin)氨基糖苷。比较研究导致了三个主要观察。首先,解码中心中的单个氨基糖苷类 - 核糖体相互作用对于低温与环境温度结构类似。其次,分析H45高度保守的GGAA TetraloOp揭示了氨基糖苷类特异性构象变化,其受温度仅适用于N1MS的温度。我们在不同的状态下报告H44-H45接口,即,订阅,脱离和均衡。第三,我们观察到30S域闭合的氨基糖苷类诱导的效果,包括新的中间闭合状态,这也对温度敏感。三个环境和五个低温晶体学数据集的分析揭示了H44-H45接合与畴闭合之间的相关性。这些观察结果说明了环境温度晶体学在鉴定局部药物结合位点相互作用诱导的核糖体功能障碍的动态机制的作用。这些数据在一起鉴定了由氨基糖苷脂结合诱导的叔核糖体结构变化,为药物设计提供功能洞察力和靶标。

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  • 来源
    《Nucleic Acids Research》 |2018年第18期|共12页
  • 作者单位

    Stanford Univ Sch Med Dept Otolaryngol Head &

    Neck Surg Stanford CA 94305 USA;

    Stanford Univ Dept Biol Struct Stanford CA 94305 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    Stanford Univ Dept Biol Struct Stanford CA 94305 USA;

    SLAC Natl Lab Stanford PULSE Inst Menlo Pk CA 94025 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    Stanford Univ Dept Biol Struct Stanford CA 94305 USA;

    Stanford Univ Sch Med Dept Otolaryngol Head &

    Neck Surg Stanford CA 94305 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    Stanford Univ Dept Biol Struct Stanford CA 94305 USA;

    SLAC Natl Lab Linac Coherent Light Source Menlo Pk CA 94025 USA;

    Stanford Univ Sch Med Dept Otolaryngol Head &

    Neck Surg Stanford CA 94305 USA;

    Stanford Univ Sch Med Dept Otolaryngol Head &

    Neck Surg Stanford CA 94305 USA;

    Stanford Univ Dept Biol Struct Stanford CA 94305 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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