Wendisch Volker F, Bott Michael, Kalinowski Jörn, Oldiges Marco, Wiechert Wolfgang
Institute of Biotechnology 1, Research Center Juelich, Germany.
J Biotechnol. 2006 Jun 25;124(1):74-92. doi: 10.1016/j.jbiotec.2005.12.002. Epub 2006 Jan 10.
Corynebacterium glutamicum is widely used for the biotechnological production of amino acids. Amino acid producing strains have been improved classically by mutagenesis and screening as well as in a rational manner using recombinant DNA technology. Metabolic flux analysis may be viewed as the first systems approach to C. glutamicum physiology since it combines isotope labeling data with metabolic network models of the biosynthetic and central metabolic pathways. However, only the complete genome sequence of C. glutamicum and post-genomics methods such as transcriptomics and proteomics have allowed characterizing metabolic and regulatory properties of this bacterium on a truly global level. Besides transcriptomics and proteomics, metabolomics and modeling approaches have now been established. Systems biology, which uses systematic genomic, proteomic and metabolomic technologies with the final aim of constructing comprehensive and predictive models of complex biological systems, is emerging for C. glutamicum. We will present current developments that advanced our insight into fundamental biology of C. glutamicum and that in the future will enable novel biotechnological applications for the improvement of amino acid production.
谷氨酸棒杆菌被广泛应用于氨基酸的生物技术生产。传统上,通过诱变和筛选以及利用重组DNA技术以合理的方式对氨基酸生产菌株进行了改良。代谢通量分析可被视为研究谷氨酸棒杆菌生理学的第一种系统方法,因为它将同位素标记数据与生物合成和中心代谢途径的代谢网络模型相结合。然而,只有谷氨酸棒杆菌的完整基因组序列以及转录组学和蛋白质组学等后基因组学方法,才使得在真正的全球水平上表征这种细菌的代谢和调控特性成为可能。除了转录组学和蛋白质组学之外,代谢组学和建模方法现在也已建立。系统生物学利用系统的基因组学、蛋白质组学和代谢组学技术,最终目的是构建复杂生物系统的全面和预测模型,它正在谷氨酸棒杆菌研究中兴起。我们将介绍当前的进展,这些进展加深了我们对谷氨酸棒杆菌基础生物学的理解,并且在未来将实现用于改进氨基酸生产的新型生物技术应用。