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糖混合物生长过程中拟杆菌的动态响应。

Dynamic responses of Bacteroides thetaiotaomicron during growth on glycan mixtures.

机构信息

Department of Microbiology and Immunology, University of Michigan Medical School, Ann Arbor, MI 48109, USA.

出版信息

Mol Microbiol. 2013 Jun;88(5):876-90. doi: 10.1111/mmi.12228. Epub 2013 May 5.

Abstract

Bacteroides thetaiotaomicron (Bt) is a human colonic symbiont that degrades many different complex carbohydrates (glycans), the identities and amounts of which are likely to change frequently and abruptly from meal-to-meal. To understand how this organism reacts to dynamic growth conditions, we challenged it with a series of different glycan mixtures and measured responses involved in glycan catabolism. Our results demonstrate that individual Bt cells can simultaneously respond to multiple glycans and that responses to new glycans are extremely rapid. The presence of alternative carbohydrates does not alter response kinetics, but reduces expression of some glycan utilization genes as well as the cell's sensitivity to glycans that are present in lower concentration. Growth in a mixture containing 12 different glycans revealed that Bt preferentially uses some before others. This metabolic hierarchy is not changed by prior exposure to lower priority glycans because re-introducing high priority substrates late in culture re-initiates repression of genes involved in degrading those with lower priority. At least some carbohydrate prioritization effects occur at the level of monosaccharide recognition. Our results provide insight into how a bacterial glycan generalist modifies its responses in dynamic glycan environments and provide essential knowledge to interpret related metabolic behaviour in vivo.

摘要

拟杆菌属(Bt)是一种人类结肠共生菌,可降解许多不同的复杂碳水化合物(糖),其身份和数量很可能频繁且突然地从一餐到下一餐发生变化。为了了解该生物体如何对动态生长条件做出反应,我们用一系列不同的聚糖混合物对其进行了挑战,并测量了与聚糖分解代谢相关的反应。我们的结果表明,单个 Bt 细胞可以同时对多种聚糖做出反应,并且对新聚糖的反应非常迅速。替代碳水化合物的存在不会改变反应动力学,但会降低一些聚糖利用基因的表达以及细胞对浓度较低的聚糖的敏感性。在含有 12 种不同聚糖的混合物中生长表明,Bt 优先使用一些聚糖,然后再使用其他聚糖。这种代谢层次结构不会因先前接触低优先级聚糖而改变,因为在培养后期重新引入高优先级底物会重新启动对低优先级聚糖进行降解的基因的抑制。至少一些碳水化合物优先级效应发生在单糖识别水平。我们的研究结果提供了对一种细菌聚糖泛生物如何在动态聚糖环境中改变其反应的深入了解,并为解释体内相关代谢行为提供了必要的知识。

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