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Transcriptome Analysis of Alkali Shock and Alkali Adaptation in Listeria monocytogenes 10403S

机译:单核细胞增生李斯特菌10403S的碱冲击和碱适应的转录组分析

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摘要

Alkali stress is an important means of inactivating undesirable pathogens in a wide range of situations. Unfortunately, Listeria monocytogenes can launch an alkaline tolerance response, significantly increasing persistence of the pathogen in such environments. This study compared transcriptome patterns of alkali and nonalkali-stressed L. monocytogenes 10403S cells, to elucidate the mechanisms by which Listeria adapts and/or grows during short- or long-term alkali stress. Transcription profiles associated with alkali shock (AS) were obtained by DNA microarray analysis of midexponential cells suspended in pH 9 media for 15, 30, or 60 min. Transcription profiles associated with alkali adaptation (AA) were obtained similarly from cells grown to midexponential phase at pH 9. Comparison of AS and AA transcription profiles with control cell profiles identified a high number of differentially regulated open-reading frames in all tested conditions. Rapid (15 min) changes in expression included upregulation of genes encoding for multiple metabolic pathways (including those associated with Na+/H+ antiporters), ATP-binding cassette transporters of functional compatible solutes, motility, and virulence-associated genes as well as the σB controlled stress resistance network. Slower (30 min and more) responses to AS and adaptation during growth in alkaline conditions (AA) involved a different pattern of changes in mRNA concentrations, and genes involved in proton export.
机译:碱胁迫是在许多情况下灭活不良病原体的重要手段。不幸的是,单核细胞增生性李斯特菌可以启动碱性耐受反应,从而大大增加了病原体在此类环境中的持久性。这项研究比较了碱性和非碱性胁迫的单核细胞增生李斯特氏菌10403S细胞的转录组模式,以阐明李斯特菌在短期或长期碱性胁迫下适应和/或生长的机制。通过对悬浮在pH 9介质中15、30或60min的中指数细胞进行DNA微阵列分析,获得了与碱冲击(AS)相关的转录谱。类似地,在pH 9下从生长至中指数期的细胞获得了与碱适应(AA)相关的转录图。在所有测试条件下,将AS和AA转录图与对照细胞图进行比较,发现了大量差异调节的开放阅读框。表达的快速变化(15分钟)包括上调多种代谢途径(包括与Na + / H + 反向转运蛋白相关的基因)的基因,ATP结合盒转运蛋白功能兼容的溶质,运动性和与毒力相关的基因,以及由σ B 控制的抗逆性网络。在碱性条件下(AA)生长期间,对AS和适应的反应较慢(至少30分钟),涉及mRNA浓度变化的不同模式,并且基因参与质子输出。

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