Cellulosic Ethanol Program, Institute of Nuclear Energy Research, 32546, Jiaan Village, Longtan Township, Taoyuan County 32546, Taiwan, ROC.
J Ind Microbiol Biotechnol. 2012 Oct;39(10):1477-86. doi: 10.1007/s10295-012-1153-6. Epub 2012 Jun 28.
The aim of this study was to develop a method to optimize expression levels of xylose-metabolizing enzymes to improve xylose utilization capacity of Saccharomyces cerevisiae. A xylose-utilizing recombinant S. cerevisiae strain YY2KL, able to express nicotinamide adenine dinucleotide phosphate, reduced (NADPH)-dependent xylose reductase (XR), nicotinamide adenine dinucleotide (NAD(+))-dependent xylitol dehydrogenase (XDH), and xylulokinase (XK), showed a low ethanol yield and sugar consumption rate. To optimize xylose utilization by YY2KL, a recombinant expression plasmid containing the XR gene was transformed and integrated into the aur1 site of YY2KL. Two recombinant expression plasmids containing an nicotinamide adenine dinucleotide phosphate (NADP(+))-dependent XDH mutant and XK genes were dually transformed and integrated into the 5S ribosomal DNA (rDNA) sites of YY2KL. This procedure allowed systematic construction of an S. cerevisiae library with different ratios of genes for xylose-metabolizing enzymes, and well-grown colonies with different xylose fermentation capacities could be further selected in yeast protein extract (YPX) medium (1 % yeast extract, 2 % peptone, and 2 % xylose). We successfully isolated a recombinant strain with a superior xylose fermentation capacity and designated it as strain YY5A. The xylose consumption rate for strain YY5A was estimated to be 2.32 g/gDCW/h (g xylose/g dry cell weight/h), which was 2.34 times higher than that for the parent strain YY2KL (0.99 g/gDCW/h). The ethanol yield was also enhanced 1.83 times by this novel method. Optimal ratio and expression levels of xylose-metabolizing enzymes are important for efficient conversion of xylose to ethanol. This study provides a novel method that allows rapid and effective selection of ratio-optimized xylose-utilizing yeast strains. This method may be applicable to other multienzyme systems in yeast.
本研究旨在开发一种优化木糖代谢酶表达水平的方法,以提高酿酒酵母利用木糖的能力。一株能够表达烟酰胺腺嘌呤二核苷酸磷酸(NADP(+))-依赖型木糖还原酶(XR)、烟酰胺腺嘌呤二核苷酸(NAD(+))-依赖型木糖醇脱氢酶(XDH)和木酮糖激酶(XK)的木糖利用重组酿酒酵母 YY2KL 菌株表现出较低的乙醇产量和糖消耗速率。为了优化 YY2KL 利用木糖的能力,将含有 XR 基因的重组表达质粒转化并整合到 YY2KL 的 aur1 位点。将含有 NADP(+))-依赖型 XDH 突变体和 XK 基因的两个重组表达质粒分别转化并整合到 YY2KL 的 5S 核糖体 DNA(rDNA)位点。通过该方法,可以系统地构建一个酿酒酵母文库,其中包含不同比例的木糖代谢酶基因,并且可以在酵母蛋白提取物(YPX)培养基(1%酵母提取物、2%蛋白胨和 2%木糖)中进一步选择具有不同木糖发酵能力的良好生长的菌落。我们成功分离出了一株具有优越木糖发酵能力的重组菌株,并将其命名为 YY5A 菌株。YY5A 菌株的木糖消耗速率估计为 2.32 g/gDCW/h(g 木糖/g 干细胞重量/h),比亲本菌株 YY2KL(0.99 g/gDCW/h)高 2.34 倍。通过这种新方法,乙醇产量也提高了 1.83 倍。优化木糖代谢酶的最佳比例和表达水平对于高效将木糖转化为乙醇非常重要。本研究提供了一种新的方法,可以快速有效地筛选出比例优化的木糖利用酵母菌株。该方法可能适用于酵母中的其他多酶系统。