酵母
代谢工程
模式生物
焊剂(冶金)
酿酒酵母
有机体
基因敲除
生产过剩
生物量(生态学)
计算生物学
微生物
琥珀酸
生化工程
基因组
生物
生物化学
化学
基因
代谢通量分析
代谢网络
遗传学
细菌
新陈代谢
有机化学
生态学
工程类
作者
Patrick F. Suthers,Hoang V. Dinh,Zia Fatma,Yihui Shen,Siu Hung Joshua Chan,Joshua D. Rabinowitz,Huimin Zhao,Costas D. Maranas
标识
DOI:10.1016/j.mec.2020.e00148
摘要
Many platform chemicals can be produced from renewable biomass by microorganisms, with organic acids making up a large fraction. Intolerance to the resulting low pH growth conditions, however, remains a challenge for the industrial production of organic acids by microorganisms. Issatchenkia orientalis SD108 is a promising host for industrial production because it is tolerant to acidic conditions as low as pH 2.0. With the goal to systematically assess the metabolic capabilities of this non-model yeast, we developed a genome-scale metabolic model for I. orientalis SD108 spanning 850 genes, 1826 reactions, and 1702 metabolites. In order to improve the model's quantitative predictions, organism-specific macromolecular composition and ATP maintenance requirements were determined experimentally and implemented. We examined its network topology, including essential genes and flux coupling analysis and drew comparisons with the Yeast 8.3 model for Saccharomyces cerevisiae. We explored the carbon substrate utilization and examined the organism's production potential for the industrially-relevant succinic acid, making use of the OptKnock framework to identify gene knockouts which couple production of the targeted chemical to biomass production. The genome-scale metabolic model iIsor850 is a data-supported curated model which can inform genetic interventions for overproduction.
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