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基于通量控制设计酿酒酵母糠醛抗性菌株用于木质纤维素生物炼制

Flux control-based design of furfural-resistance strains of Saccharomyces cerevisiae for lignocellulosic biorefinery.

作者信息

Unrean Pornkamol

机构信息

National Center for Genetic Engineering and Biotechnology (BIOTEC), 113 Thailand Science Park, Paholyothin Road, Klong 1, Klong Luang, Pathumthani, 12120, Thailand.

出版信息

Bioprocess Biosyst Eng. 2017 Apr;40(4):611-623. doi: 10.1007/s00449-016-1725-3. Epub 2016 Dec 26.

Abstract

We have previously developed a dynamic flux balance analysis of Saccharomyces cerevisiae for elucidation of genome-wide flux response to furfural perturbation (Unrean and Franzen, Biotechnol J 10(8):1248-1258, 2015). Herein, the dynamic flux distributions were analyzed by flux control analysis to identify target overexpressed genes for improved yeast robustness against furfural. The flux control coefficient (FCC) identified overexpressing isocitrate dehydrogenase (IDH1), a rate-controlling flux for ethanol fermentation, and dicarboxylate carrier (DIC1), a limiting flux for cell growth, as keys of furfural-resistance phenotype. Consistent with the model prediction, strain characterization showed 1.2- and 2.0-fold improvement in ethanol synthesis and furfural detoxification rates, respectively, by IDH1 overexpressed mutant compared to the control. DIC1 overexpressed mutant grew at 1.3-fold faster and reduced furfural at 1.4-fold faster than the control under the furfural challenge. This study hence demonstrated the FCC-based approach as an effective tool for guiding the design of robust yeast strains.

摘要

我们之前开发了一种酿酒酵母的动态通量平衡分析方法,用于阐明全基因组通量对糠醛扰动的响应(Unrean和Franzen,《生物技术杂志》10(8):1248 - 1258,2015年)。在此,通过通量控制分析对动态通量分布进行分析,以确定可提高酵母对糠醛耐受性的目标过表达基因。通量控制系数(FCC)确定过表达异柠檬酸脱氢酶(IDH1,乙醇发酵的速率控制通量)和二羧酸载体(DIC1,细胞生长的限制通量)是糠醛抗性表型的关键因素。与模型预测一致,菌株表征显示,与对照相比,IDH1过表达突变体的乙醇合成和糠醛解毒速率分别提高了1.2倍和2.0倍。在糠醛挑战下,DIC1过表达突变体的生长速度比对照快1.3倍,糠醛还原速度比对照快1.4倍。因此,本研究证明基于FCC的方法是指导设计稳健酵母菌株的有效工具。

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