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细胞内谷氨酸脱羧酶系统的特征:其功能、转录和在各种李斯特菌耐酸能力中的作用分析。

Characterization of the intracellular glutamate decarboxylase system: analysis of its function, transcription, and role in the acid resistance of various strains of Listeria monocytogenes.

机构信息

Bacterial Stress Response Group, Microbiology, School of Natural Sciences, National University of Ireland, Galway, Galway, Ireland.

出版信息

Appl Environ Microbiol. 2012 May;78(10):3571-9. doi: 10.1128/AEM.00227-12. Epub 2012 Mar 9.

Abstract

The glutamate decarboxylase (GAD) system is important for the acid resistance of Listeria monocytogenes. We previously showed that under acidic conditions, glutamate (Glt)/γ-aminobutyrate (GABA) antiport is impaired in minimal media but not in rich ones, like brain heart infusion. Here we demonstrate that this behavior is more complex and it is subject to strain and medium variation. Despite the impaired Glt/GABA antiport, cells accumulate intracellular GABA (GABA(i)) as a standard response against acid in any medium, and this occurs in all strains tested. Since these systems can occur independently of one another, we refer to them as the extracellular (GAD(e)) and intracellular (GAD(i)) systems. We show here that GAD(i) contributes to acid resistance since in a ΔgadD1D2 mutant, reduced GABA(i) accumulation coincided with a 3.2-log-unit reduction in survival at pH 3.0 compared to that of wild-type strain LO28. Among 20 different strains, the GAD(i) system was found to remove 23.11% ± 18.87% of the protons removed by the overall GAD system. Furthermore, the GAD(i) system is activated at milder pH values (4.5 to 5.0) than the GAD(e) system (pH 4.0 to 4.5), suggesting that GAD(i) is the more responsive of the two and the first line of defense against acid. Through functional genomics, we found a major role for GadD2 in the function of GAD(i), while that of GadD1 was minor. Furthermore, the transcription of the gad genes in three common reference strains (10403S, LO28, and EGD-e) during an acid challenge correlated well with their relative acid sensitivity. No transcriptional upregulation of the gadT2D2 operon, which is the most important component of the GAD system, was observed, while gadD3 transcription was the highest among all gad genes in all strains. In this study, we present a revised model for the function of the GAD system and highlight the important role of GAD(i) in the acid resistance of L. monocytogenes.

摘要

谷氨酸脱羧酶(GAD)系统对于李斯特菌的耐酸能力很重要。我们之前的研究表明,在酸性条件下,最小培养基中的谷氨酸(Glt)/γ-氨基丁酸(GABA)反向转运受损,但在富含脑心浸液的培养基中则不受影响。在这里,我们证明这种行为更为复杂,并且受到菌株和培养基变化的影响。尽管 Glt/GABA 反向转运受损,但细胞在任何培养基中都会积累细胞内 GABA(GABA(i))作为对抗酸的标准反应,并且这在所有测试的菌株中都发生。由于这些系统可以相互独立发生,因此我们将它们称为细胞外(GAD(e))和细胞内(GAD(i))系统。我们在这里表明,GAD(i)有助于耐酸能力,因为在ΔgadD1D2 突变体中,与野生型菌株 LO28 相比,GABA(i)积累减少导致在 pH 3.0 下的存活率降低了 3.2 个对数单位。在 20 个不同的菌株中,发现 GAD(i)系统去除了由整个 GAD 系统去除的质子的 23.11%±18.87%。此外,与 GAD(e)系统(pH 4.0 至 4.5)相比,GAD(i)系统在更温和的 pH 值(4.5 至 5.0)下被激活,表明 GAD(i)更为敏感,是抵御酸的第一道防线。通过功能基因组学,我们发现 GadD2 在 GAD(i)的功能中起主要作用,而 GadD1 的作用较小。此外,在酸胁迫下,三种常见参考菌株(10403S、LO28 和 EGD-e)中的 gad 基因转录与其相对酸敏感性密切相关。没有观察到 gadT2D2 操纵子的转录上调,该操纵子是 GAD 系统最重要的组成部分,而在所有菌株中,gadD3 转录是所有 gad 基因中最高的。在这项研究中,我们提出了一个修订后的 GAD 系统功能模型,并强调了 GAD(i)在李斯特菌耐酸能力中的重要作用。

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