Hfq influences ciprofloxacin accumulation in Escherichia coli independently of ompC and ompF post-transcriptional regulation.

IF 2 3区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Florian Turbant, Natalia Lewandowska, Sylwia Bloch, Frank Wien, Hugo Chauvet, Grzegorz Węgrzyn, Véronique Arluison
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引用次数: 0

Abstract

The antibiotic resistance of pathogenic bacteria is currently one of the major problems in medicine, and finding novel antibacterial agents is one of the most difficult tasks in the field of biomedical sciences. Studies on such tasks can be successful only if genetic and molecular mechanisms leading to antibiotic resistance/sensitivity are understood. Previous reports indicated that the bacterial protein Hfq, discovered as an RNA chaperone but subsequently demonstrated to play also other functions in cells, is involved in the mechanisms of the response of bacterial cells to antibiotics. Recently, it was found that Hfq dysfunction resulted in more effective accumulation of an antibiotic ciprofloxacin in Escherichia coli cells irrespective of the presence or absence of the AcrB efflux pump. However, small RNA-mediated impairment of expression of the ompF gene, which encodes a porin involved in antibiotics influx, reversed the effects of the absence of Hfq on the antibiotic accumulation. This led to the hypothesis that Hfq might influence ciprofloxacin accumulation in the manner independent on its RNA chaperone function, as this protein might also influence cellular membrane structure and functions. Here, we demonstrate that in ompC and ompF mutants of E. coli, accumulation of ciprofloxacin is significantly impaired in the absence of Hfq or its C-terminal domain. These results corroborate the above-mentioned hypothesis on a sRNA-independent mechanism of Hfq-mediated modulation of the antibiotic transmembrane transport. Since fluoroquinolones use both protein- and lipid-mediated pathways to cross the outer membrane, Hfq may influence both processes. This possibility will be discussed herein.

Hfq对大肠杆菌中环丙沙星积累的影响独立于ompC和ompF转录后调控。
病原菌对抗生素的耐药性是目前医学上的主要问题之一,寻找新的抗菌药物是生物医学领域最困难的任务之一。只有了解导致抗生素耐药性/敏感性的遗传和分子机制,此类任务的研究才能成功。先前的报道表明,细菌蛋白Hfq作为RNA伴侣被发现,但随后被证明在细胞中还发挥其他功能,参与细菌细胞对抗生素的反应机制。最近,研究发现Hfq功能障碍导致抗生素环丙沙星在大肠杆菌细胞中更有效的积累,而不管AcrB外排泵是否存在。然而,小rna介导的ompF基因(编码一种参与抗生素内流的孔蛋白)表达损伤逆转了Hfq缺失对抗生素积累的影响。这导致假设Hfq可能以独立于其RNA伴侣功能的方式影响环丙沙星的积累,因为该蛋白也可能影响细胞膜结构和功能。在这里,我们证明了在大肠杆菌的ompC和ompF突变体中,在缺乏Hfq或其c端结构域时,环丙沙星的积累明显受损。这些结果证实了上述假说,即hfq介导的抗生素跨膜转运的调节机制不依赖于srna。由于氟喹诺酮类药物同时使用蛋白质和脂质介导的途径穿过外膜,Hfq可能影响这两个过程。本文将讨论这种可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Applied Genetics
Journal of Applied Genetics 生物-生物工程与应用微生物
CiteScore
4.30
自引率
4.20%
发文量
62
审稿时长
6-12 weeks
期刊介绍: The Journal of Applied Genetics is an international journal on genetics and genomics. It publishes peer-reviewed original papers, short communications (including case reports) and review articles focused on the research of applicative aspects of plant, human, animal and microbial genetics and genomics.
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