Yanase Hideshi, Sato Dai, Yamamoto Keiko, Matsuda Saori, Yamamoto Sho, Okamoto Kenji
Department of Biotechnology, Faculty of Engineering, Tottori University, 4-101 Koyamacho-Minami, Tottori, Tottori, Japan.
Appl Environ Microbiol. 2007 Apr;73(8):2592-9. doi: 10.1128/AEM.02302-06. Epub 2007 Feb 16.
Its metabolic characteristics suggest that Zymobacter palmae gen. nov., sp. nov. could serve as a useful new ethanol-fermenting bacterium, but its biotechnological exploitation will require certain genetic modifications. We therefore engineered Z. palmae so as to broaden the range of its fermentable sugar substrates to include the pentose sugar xylose. The Escherichia coli genes encoding the xylose catabolic enzymes xylose isomerase, xylulokinase, transaldolase, and transketolase were introduced into Z. palmae, where their expression was driven by the Zymomonas mobilis glyceraldehyde-3-phosphate dehydrogenase promoter. When cultured with 40 g/liter xylose, the recombinant Z. palmae strain was able to ferment 16.4 g/liter xylose within 5 days, producing 91% of the theoretical yield of ethanol with no accumulation of organic acids as metabolic by-products. Notably, xylose acclimation enhanced both the expression of xylose catabolic enzymes and the rate of xylose uptake into recombinant Z. palmae, which enabled the acclimated organism to completely and simultaneously ferment a mixture of 40 g/liter glucose and 40 g/liter xylose within 8 h, producing 95% of the theoretical yield of ethanol. Thus, efficient fermentation of a mixture of glucose and xylose to ethanol can be accomplished by using Z. palmae expressing E. coli xylose catabolic enzymes.
其代谢特性表明,棕榈发酵单胞菌属新属、新种可作为一种有用的新型乙醇发酵细菌,但其生物技术开发需要进行某些基因改造。因此,我们对棕榈发酵单胞菌进行了基因工程改造,以扩大其可发酵糖底物的范围,使其包括戊糖木糖。将编码木糖分解代谢酶木糖异构酶、木酮糖激酶、转醛醇酶和转酮醇酶的大肠杆菌基因导入棕榈发酵单胞菌,其表达由运动发酵单胞菌甘油醛-3-磷酸脱氢酶启动子驱动。当在含有40克/升木糖的培养基中培养时,重组棕榈发酵单胞菌菌株能够在5天内发酵16.4克/升木糖,产生的乙醇产量为理论产量的91%且没有有机酸作为代谢副产物积累。值得注意的是,木糖驯化增强了木糖分解代谢酶的表达以及木糖摄入重组棕榈发酵单胞菌的速率,这使得驯化后的菌株能够在8小时内完全并同时发酵含有40克/升葡萄糖和40克/升木糖的混合物,产生的乙醇产量为理论产量的95%。因此,通过使用表达大肠杆菌木糖分解代谢酶的棕榈发酵单胞菌,可以实现葡萄糖和木糖混合物高效发酵生成乙醇。