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A Dynamic Model for Diauxic Growth, Overflow Metabolism, and AI-2-Mediated Cell–Cell Communication of Salmonella Typhimurium Based on Systems Biology Concepts

机译:基于系统生物学概念的鼠伤寒沙门氏菌生长,溢出代谢和AI-2-介导的细胞间通讯的动力学模型

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摘要

The last decades, the research on bacterial cell–cell communication or quorum sensing has been quite intense. Quorum sensing allows bacteria to coordinate their behavior and to act as one entity. Quorum sensing controls microbiological functions of medical, agricultural and industrial importance and a better understanding of the underlying mechanisms and the conditions under which the signaling occurs, offers possibilities for new applications. In this article a dynamic model for diauxic growth, overflow metabolism and AI-2-mediated cell–cell communication of Salmonella Typhimurium is presented. The growth, and the production and uptake of the AI-2 signaling molecule of S. Typhimurium are investigated in a controlled environment (bioreactor). In a first stage a model is developed to describe diauxic growth and overflow metabolism. This model is extended in a second stage to describe AI-2 dynamics of S. Typhimurium in relation to the growth kinetics and biomass concentration. It is illustrated how this model can be employed to test hypotheses concerning AI-2 dynamics on the basis of macroscopic data.
机译:在过去的几十年中,有关细菌细胞间通信或群体感应的研究非常密集。群体感应使细菌能够协调其行为并充当一个整体。群体感应控制着医学,农业和工业重要性的微生物功能,并且更好地理解发生信号的潜在机制和条件,为新的应用提供了可能性。在本文中,提出了一种针对鼠伤寒沙门氏菌的双生生长,溢流代谢和AI-2介导的细胞间通讯的动力学模型。在受控环境(生物反应器)中研​​究了鼠伤寒沙门氏菌AI-2信号分子的生长,产生和摄取。在第一阶段,开发模型来描述双生生长和溢流代谢。在第二阶段中扩展了该模型,以描述鼠伤寒沙门氏菌的AI-2动态与生长动力学和生物量浓度的关系。说明了如何使用此模型基于宏观数据测试有关AI-2动力学的假设。

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