首页> 美国卫生研究院文献>Journal of Bacteriology >Novel MntR-Independent Mechanism of Manganese Homeostasis in Escherichia coli by the Ribosome-Associated Protein HflX
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Novel MntR-Independent Mechanism of Manganese Homeostasis in Escherichia coli by the Ribosome-Associated Protein HflX

机译:核糖体相关蛋白HflX在大肠杆菌中的锰稳态的新型独立于MntR的机制。

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摘要

Manganese is a micronutrient required for activities of several important enzymes under conditions of oxidative stress and iron starvation. In Escherichia coli, the manganese homeostasis network primarily constitutes a manganese importer (MntH) and an exporter (MntP), which are regulated by the MntR dual regulator. In this study, we find that deletion of E. coli hflX, which encodes a ribosome-associated GTPase with unknown function, renders extreme manganese sensitivity characterized by arrested cell growth, filamentation, lower rate of replication, and DNA damage. We demonstrate that perturbation by manganese induces unprecedented influx of manganese in ΔhflX cells compared to that in the wild-type E. coli strain. Interestingly, our study indicates that the imbalance in manganese homeostasis in the ΔhflX strain is independent of the MntR regulon. Moreover, the influx of manganese leads to a simultaneous influx of zinc and inhibition of iron import in ΔhflX cells. In order to review a possible link of HflX with the λ phage life cycle, we performed a lysis-lysogeny assay to show that the Mn-perturbed ΔhflX strain reduces the frequency of lysogenization of the phage. This observation raises the possibility that the induced zinc influx in the manganese-perturbed ΔhflX strain stimulates the activity of the zinc-metalloprotease HflB, the key determinant of the lysis-lysogeny switch. Finally, we propose that manganese-mediated autophosphorylation of HflX plays a central role in manganese, zinc, and iron homeostasis in E. coli cells.
机译:锰是微量营养元素,是氧化应激和铁饥饿条件下几种重要酶的活性所必需的。在大肠杆菌中,锰稳态网络主要由MntR双重监管者监管的锰进口商(MntH)和出口商(MntP)。在这项研究中,我们发现大肠杆菌hflX的缺失编码功能未知的与核糖体相关的GTP酶,使锰的敏感性极高,其特征是细胞生长停滞,丝化,复制速率降低和DNA损伤。我们证明,与野生型大肠杆菌菌株相比,锰的扰动在ΔhflX细胞中诱导了锰的空前流入。有趣的是,我们的研究表明ΔhflX菌株中锰稳态的失衡与MntR调节子无关。此外,锰的流入导致ΔhflX细胞中锌的同时流入和铁的进口受到抑制。为了审查HflX与λ噬菌体生命周期的可能联系,我们进行了裂解-溶原分析,以显示Mn扰动的ΔhflX菌株降低了噬菌体溶原的频率。该观察结果提出了这样的可能性,即在锰扰动的ΔhflX菌株中诱导的锌大量涌入会刺激锌-金属蛋白酶HflB的活性,锌-金属蛋白酶HflB是裂解-溶原性转换的关键决定因素。最后,我们提出锰介导的HflX的自磷酸化在大肠杆菌细胞中的锰,锌和铁稳态中起着核心作用。

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