Arsköld Emma, Lohmeier-Vogel Elke, Cao Rong, Roos Stefan, Rådström Peter, van Niel Ed W J
Department of Applied Microbiology, Lund University, P.O. Box 124, SE-221 00 Lund, Sweden.
J Bacteriol. 2008 Jan;190(1):206-12. doi: 10.1128/JB.01227-07. Epub 2007 Oct 26.
Metabolic flux analysis indicated that the heterofermentative Lactobacillus reuteri strain ATCC 55730 uses both the Embden-Meyerhof pathway (EMP) and phosphoketolase pathway (PKP) when glucose or sucrose is converted into the three-carbon intermediate stage of glycolysis. In all cases studied, the main flux is through the PKP, while the EMP is used as a shunt. In the exponential growth phase, 70%, 73%, and 84% of the flux goes through the PKP in cells metabolizing (i) glucose plus fructose, (ii) glucose alone, and (iii) sucrose alone, respectively. Analysis of the genome of L. reuteri ATCC 55730 confirmed the presence of the genes for both pathways. Further evidence for the simultaneous operation of two central carbon metabolic pathways was found through the detection of fructose-1,6-bisphosphate aldolase, phosphofructokinase, and phosphoglucoisomerase activities and the presence of phosphorylated EMP and PKP intermediates using in vitro 31P NMR. The maximum specific growth rate and biomass yield obtained on glucose were twice as low as on sucrose. This was the result of low ATP levels being present in glucose-metabolizing cells, although the ATP production flux was as high as in sucrose-metabolizing cells due to a twofold increase of enzyme activities in both glycolytic pathways. Growth performance on glucose could be improved by adding fructose as an external electron acceptor, suggesting that the observed behavior is due to a redox imbalance causing energy starvation.
代谢通量分析表明,当葡萄糖或蔗糖转化为糖酵解的三碳中间阶段时,兼性发酵的罗伊氏乳杆菌菌株ATCC 55730同时使用糖酵解途径(EMP)和磷酸酮醇酶途径(PKP)。在所研究的所有情况下,主要通量通过PKP,而EMP用作分流途径。在指数生长期,在代谢(i)葡萄糖加果糖、(ii)单独葡萄糖和(iii)单独蔗糖的细胞中,分别有70%、73%和84%的通量通过PKP。对罗伊氏乳杆菌ATCC 55730基因组的分析证实了这两种途径的基因均存在。通过检测果糖-1,6-二磷酸醛缩酶、磷酸果糖激酶和磷酸葡萄糖异构酶的活性,以及使用体外31P NMR检测磷酸化的EMP和PKP中间体,发现了两条中心碳代谢途径同时运行的进一步证据。在葡萄糖上获得的最大比生长速率和生物量产量仅为蔗糖上的一半。这是由于代谢葡萄糖的细胞中ATP水平较低,尽管由于两条糖酵解途径中酶活性增加两倍,ATP产生通量与代谢蔗糖的细胞中一样高。通过添加果糖作为外部电子受体,可以改善在葡萄糖上的生长性能,这表明观察到的行为是由于氧化还原失衡导致能量饥饿。