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Modulation of translation and induction of autophagy by bacterial exoproducts

机译:细菌外生产物对翻译和自噬诱导的调控

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摘要

Autophagy is a catabolic process of paramount importance for cellular homeostasis during starvation. Generally, autophagy and translation are inversely regulated. Many kinds of stress lead to attenuation of translation via phosphorylation of eukaryotic translation initiation factor alpha (eIF2α). This response is conserved from yeast to man and can be either protective or detrimental depending on strength and duration of stress, and additional factors. During starvation or viral infection, phosphorylation of eIF2α is required for induction of autophagy. As exemplified here by α-hemolysin, a small pore-forming toxin (PFT) of Staphylococcus aureus and (S)-3-oxo-C12-homoserine lactone [(S)-3-oxo-C12-HSL], a quorum-sensing hormone of Pseudomonas aeruginosa, bacterial exoproducts may also impact translation and autophagy. Thereby, PFT and (S)-3-oxo-C12-HSL act differentially. Damage of the plasma membrane by PFT causes efflux of potassium, which leads to amino acid starvation and energy loss. This triggers amino acid-sensitive eIF2α-kinase GCN2, as well as energy sensor AMPK, and deactivates mTORC1. The output of this response, that is, transient metabolic reprogramming is an essential part of a defense program which enables cells to survive attack by a pore-forming agent. Thus, nutrient/energy sensors serve as sentinels of plasma membrane integrity. In contrast to PFT, (S)-3-oxo-C12-HSL does not cause acute loss of ATP or activation of GCN2, but also triggers phosphorylation of eIF2α and inhibits translation. This response appears not to depend on efflux of potassium and requires eIF2α-kinase PKR. Like α-toxin, (S)-3-oxo-C12-HSL increases lipidation of LC3 and accumulation of autophagosomes in cells. Apart from directly affecting host-cell viability, bacterial exoproducts might galvanize bystander cells to prepare for close combat with microbial offenders or inadvertently accommodate some of them.
机译:自噬是饥饿过程中细胞稳态的最重要的分解代谢过程。通常,自噬和翻译是反向调节的。多种压力导致通过真核翻译起始因子α(eIF2α)磷酸化的翻译减弱。从酵母到人,这种反应是保守的,并且取决于压力的强度和持续时间以及其他因素,可以是保护性的或有害的。在饥饿或病毒感染期间,诱导自噬需要eIF2α的磷酸化。如此处以α-溶血素为例,这是一种金黄色葡萄球菌和(S)-3-oxo-C12-高丝氨酸内酯[(S)-3-oxo-C12-HSL]的小成孔毒素(PFT),铜绿假单胞菌的感官激素,细菌外产物也可能影响翻译和自噬。因此,PFT和(S)-3-氧代-C12-HSL起不同作用。 PFT破坏质膜会导致钾外流,从而导致氨基酸饥饿和能量损失。这会触发对氨基酸敏感的eIF2α激酶GCN2以及能量传感器AMPK,并使mTORC1失活。该反应的输出,即瞬时代谢重编程,是防御程序的重要组成部分,该程序可使细胞幸免于成孔剂的攻击。因此,营养/能量传感器充当质膜完整性的前哨。与PFT相比,(S)-3-oxo-C12-HSL不会引起ATP的急剧损失或GCN2的激活,但会触发eIF2α的磷酸化并抑制翻译。该反应似乎不依赖于钾的流出,需要eIF2α激酶PKR。像α毒素一样,(S)-3-oxo-C12-HSL增加了LC3的脂化作用和自噬体在细胞中的积累。除了直接影响宿主细胞的生存能力外,细菌外产物还可能刺激旁观者细胞,以准备与微生物罪犯进行近距离交战或无意中容纳其中一些。

著录项

  • 来源
    《Medical Microbiology and Immunology 》 |2012年第4期| p.409-418| 共10页
  • 作者单位

    Institute of Medical Microbiology and Hygiene, University Medical Center, Johannes Gutenberg-University Mainz, Hochhaus am Augustusplatz, 55131, Mainz, Germany;

    Institute of Medical Microbiology and Hygiene, University Medical Center, Johannes Gutenberg-University Mainz, Hochhaus am Augustusplatz, 55131, Mainz, Germany;

    Institute of Medical Microbiology and Hygiene, University Medical Center, Johannes Gutenberg-University Mainz, Hochhaus am Augustusplatz, 55131, Mainz, Germany;

    Institute of Medical Microbiology and Hygiene, University Medical Center, Johannes Gutenberg-University Mainz, Hochhaus am Augustusplatz, 55131, Mainz, Germany;

    Institute of Medical Microbiology and Hygiene, University Medical Center, Johannes Gutenberg-University Mainz, Hochhaus am Augustusplatz, 55131, Mainz, Germany;

    Institute of Medical Microbiology and Hygiene, University Medical Center, Johannes Gutenberg-Uni;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Membrane damage; Translation; Autophagy; Quorum-sensing hormone; Pore-forming toxins;

    机译:膜损伤;翻译;自噬;群体感应激素;成孔毒素;

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