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Metabolic models for rational improvement of lactic acid bacteria as cell factories

机译:合理改善乳酸菌作为细胞工厂的代谢模型

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Lactic acid bacteria ( LAB) are microbes that are used all over the world in a variety of fermentations. Beside their most important application, which is undoubtedly in the dairy industry, LAB are also applied at an industrial scale in the fermentation of other food-raw materials like meat and vegetables. LAB have a relatively simple carbon and energy metabolism which is characterized by the rapid glycolytic conversion of sugars into lactic acid. Many examples of successful metabolic engineering approaches in LAB focus on re-routing of the pyruvate metabolism. Recently, LAB have also been used for the engineering of complex biosynthetic pathways leading to the production of valuable metabolites with health benefits for the consumers (Hugenholtz and Smid 2002). Engineering complex biosynthetic pathways such as for vitamin or polysaccharide biosynthesis, often leads to unexpected phenotypes which can only be understood if genome-wide metabolic models of the microorganism are available. Here we describe the construction of metabolic models of Lactobacillus plantarum based on the availability of genome sequence information. After prediction of gene function, we have focused on the development and improvement of methods and tools to go from genome sequence to gene annotation, to pathway reconstruction and to prediction of phenotype through metabolic models. We have set up different bioinformatics tools, including web-interfaced databases and simulation software. This paper describes some of these tools, and how they are used and combined with experimental data to arrive at a model of the metabolic network of L. plantarum. The use of these types of models and the type of questions that can be addressed will be discussed.
机译:乳酸菌(LAB)是在全世界范围内广泛用于各种发酵的微生物。除了它们在乳品行业中最重要的应用之外,乳酸菌还以工业规模应用于肉类和蔬菜等其他食物原料的发酵。 LAB具有相对简单的碳和能量代谢,其特征在于糖快速糖酵解转化为乳酸。 LAB中成功的代谢工程方法的许多例子都集中在丙酮酸代谢的重新路由上。最近,LAB还被用于复杂的生物合成途径的工程设计,从而产生对消费者有益的有价值的代谢产物(Hugenholtz和Smid 2002)。工程化复杂的生物合成途径(例如维生素或多糖的生物合成)通常会导致意想不到的表型,只有在可获得微生物的全基因组代谢模型时才能理解这种表型。在这里我们描述了基于基因组序列信息的植物乳杆菌代谢模型的构建。在预测基因功能之后,我们致力于开发和改进从基因组序列到基因注释,通路重建以及通过代谢模型预测表型的方法和工具。我们已经建立了不同的生物信息学工具,包括网络接口的数据库和模拟软件。本文介绍了其中一些工具,以及如何使用它们并与实验数据结合以得出植物乳杆菌代谢网络的模型。将讨论这些类型的模型的使用以及可以解决的问题的类型。

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