Heuser Florian, Marin Kay, Kaup Björn, Bringer Stephanie, Sahm Hermann
Forschungszentrum Jülich GmbH, Institute of Biotechnology 1, D-52425 Jülich, Germany.
Metab Eng. 2009 May;11(3):178-83. doi: 10.1016/j.ymben.2009.01.006. Epub 2009 Feb 5.
The highly productive whole-cell biotransformation of D-fructose to D-mannitol with recombinant, resting cells of Escherichia coli BL21(DE3) requires the combined expression of mdh, fdh and glf which encode mannitol and formate dehydrogenases and a sugar facilitator, respectively. However, long-term stability of the system was restricted, possibly due to loss of the cofactor NAD, high concentrations of formate, formation of CO(2) affecting the internal pH of the cells, accumulation of high intracellular concentrations of D-mannitol, and export of D-mannitol. Downstream of the mdh gene of Leuconostoc pseudomesenteroides, we identified an open reading frame encoding for a putative mannitol permease. The gene was cloned and expressed in E. coli. Biochemical analyses revealed an activity as secondary carrier for D-fructose. Therefore, the carrier was named FupL and participation in D-mannitol transport was excluded. In biotransformation experiments, the productivity of D-mannitol formation obtained with the strain expressing the additional fupL gene was enhanced by 20%.
利用重组的大肠杆菌BL21(DE3)静息细胞将D-果糖高效全细胞生物转化为D-甘露醇,需要分别编码甘露醇脱氢酶、甲酸脱氢酶和一种糖转运体的mdh、fdh和glf的联合表达。然而,该系统的长期稳定性受到限制,这可能是由于辅因子NAD的损失、高浓度的甲酸、影响细胞内pH值的CO₂的形成、细胞内高浓度D-甘露醇的积累以及D-甘露醇的输出。在类肠系膜明串珠菌的mdh基因下游,我们鉴定出一个编码假定甘露醇通透酶的开放阅读框。该基因被克隆并在大肠杆菌中表达。生化分析揭示了其作为D-果糖二级载体的活性。因此,该载体被命名为FupL,并且排除了其参与D-甘露醇转运的可能性。在生物转化实验中,表达额外fupL基因的菌株产生D-甘露醇的生产率提高了20%。