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迈向对感染期间单核细胞增生李斯特菌代谢的系统理解。

Toward a Systemic Understanding of Listeria monocytogenes Metabolism during Infection.

作者信息

Fuchs Thilo M, Eisenreich Wolfgang, Kern Tanja, Dandekar Thomas

机构信息

Abteilung Mikrobiologie, Zentralinstitut für Ernährungs- und Lebensmittelforschung, Technische Universität München Freising, Germany.

出版信息

Front Microbiol. 2012 Feb 3;3:23. doi: 10.3389/fmicb.2012.00023. eCollection 2012.

Abstract

Listeria monocytogenes is a foodborne human pathogen that can cause invasive infection in susceptible animals and humans. For proliferation within hosts, this facultative intracellular pathogen uses a reservoir of specific metabolic pathways, transporter, and enzymatic functions whose expression requires the coordinated activity of a complex regulatory network. The highly adapted metabolism of L. monocytogenes strongly depends on the nutrient composition of various milieus encountered during infection. Transcriptomic and proteomic studies revealed the spatial-temporal dynamic of gene expression of this pathogen during replication within cultured cells or in vivo. Metabolic clues are the utilization of unusual C(2)- and C(3)-bodies, the metabolism of pyruvate, thiamine availability, the uptake of peptides, the acquisition or biosynthesis of certain amino acids, and the degradation of glucose-phosphate via the pentose phosphate pathway. These examples illustrate the interference of in vivo conditions with energy, carbon, and nitrogen metabolism, thus affecting listerial growth. The exploitation, analysis, and modeling of the available data sets served as a first attempt to a systemic understanding of listerial metabolism during infection. L. monocytogenes might serve as a model organism for systems biology of a Gram-positive, facultative intracellular bacterium.

摘要

单核细胞增生李斯特菌是一种食源性人类病原体,可在易感动物和人类中引起侵袭性感染。为了在宿主体内增殖,这种兼性细胞内病原体利用特定代谢途径、转运蛋白和酶功能的储备库,其表达需要复杂调控网络的协同作用。单核细胞增生李斯特菌高度适应的代谢强烈依赖于感染过程中遇到的各种环境的营养成分。转录组学和蛋白质组学研究揭示了这种病原体在培养细胞内或体内复制过程中基因表达的时空动态。代谢线索包括利用不寻常的C(2)和C(3)体、丙酮酸代谢、硫胺素可用性、肽的摄取、某些氨基酸的获取或生物合成以及通过磷酸戊糖途径降解葡萄糖-磷酸。这些例子说明了体内条件对能量、碳和氮代谢的干扰,从而影响李斯特菌的生长。对现有数据集的利用、分析和建模是对感染期间李斯特菌代谢进行系统理解的首次尝试。单核细胞增生李斯特菌可能作为革兰氏阳性兼性细胞内细菌系统生物学的模式生物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd01/3271275/aa83f7726f4c/fmicb-03-00023-g001.jpg

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