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Analysis and prediction of the physiological effects of altered coenzyme specificity in xylose reductase and xylitol dehydrogenase during xylose fermentation by Saccharomyces cerevisiae

机译:酿酒酵母木糖发酵过程中木糖还原酶和木糖醇脱氢酶辅酶特异性改变的生理效应的分析和预测

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摘要

An advanced strategy of Saccharomyces cerevisiae strain development for fermentation of xylose applies tailored enzymes in the process of metabolic engineering. The coenzyme specificities of the NADPH-preferring xylose reductase (XR) and the NAD+-dependent xylitol dehydrogenase (XDH) have been targeted in previous studies by protein design or evolution with the aim of improving the recycling of NADH or NADPH in their two-step pathway, converting xylose to xylulose. Yeast strains expressing variant pairs of XR and XDH that according to in vitro kinetic data were suggested to be much better matched in coenzyme usage than the corresponding pair of wild-type enzymes, exhibit widely varying capabilities for xylose fermentation. To achieve coherence between enzyme properties and the observed strain performance during fermentation, we explored the published kinetic parameters for wild-type and engineered forms of XR and XDH as possible predictors of xylitol by-product formation (Yxylitol) in yeast physiology. We found that the ratio of enzymatic reaction rates using NADP(H) and NAD(H) that was calculated by applying intracellular reactant concentrations to rate equations derived from bi-substrate kinetic analysis, succeeded in giving a statistically reliable forecast of the trend effect on Yxylitol. Prediction based solely on catalytic efficiencies with or without binding affinities for NADP(H) and NAD(H) were not dependable, and we define a minimum demand on the enzyme kinetic characterization to be performed for this purpose. An immediate explanation is provided for the typically lower Yxylitol in the current strains harboring XR engineered for utilization of NADH as compared to strains harboring XDH engineered for utilization of NADP+. The known XDH enzymes all exhibit a relatively high Km for NADP+ so that physiological boundary conditions are somewhat unfavorable for xylitol oxidation by NADP+. A criterion of physiological fitness is developed for engineered XR working together with wild-type XDH.
机译:用于木糖发酵的酿酒酵母菌株开发的高级策略在代谢工程的过程中应用定制的酶。在以前的研究中,通过蛋白质设计或进化来靶向NADPH优先的木糖还原酶(XR)和NAD + 依赖性的木糖醇脱氢酶(XDH)的辅酶特异性,目的是改善NDPPH的循环利用NADH或NADPH通过两步途径将木糖转化为木酮糖。根据体外动力学数据,表达XR和XDH变体对的酵母菌株在辅酶的使用中比对应的野生型酶具有更好的匹配性,表现出广泛的木糖发酵能力。为了在发酵过程中实现酶特性与观察到的菌株性能之间的一致性,我们探索了已公开的XR和XDH野生型和工程形式动力学参数,作为酵母生理中木糖醇副产物形成(Yxylitol)的可能预测指标。我们发现,使用NADP(H)和NAD(H)进行酶促反应速率的比率是通过将细胞内反应物浓度应用于从双底物动力学分析得出的速率方程式而得出的,它成功地提供了对趋势趋势影响的统计可靠预测木糖醇。仅基于催化效率对NADP(H)和NAD(H)具有或不具有结合亲和力的预测是不可靠的,并且我们为此目的定义了对酶动力学表征的最低要求。现在提供了一个解释,即与具有为利用NADP + 而被工程化的XDH的菌株相比,目前具有为NADH的工程化的XR的菌株中通常较低的木糖醇。已知的XDH酶对NADP + 均具有相对较高的Km,因此生理边界条件对于NADP + 的木糖醇氧化反应有些不利。为工程XR和野生型XDH共同开发了生理适应性标准。

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