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Quantifying the metabolic capabilities of engineered Zymomonas mobilis using linear programming analysis

机译:使用线性规划分析定量工程化运动发酵单胞菌的代谢能力

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摘要

BackgroundThe need for discovery of alternative, renewable, environmentally friendly energy sources and the development of cost-efficient, "clean" methods for their conversion into higher fuels becomes imperative. Ethanol, whose significance as fuel has dramatically increased in the last decade, can be produced from hexoses and pentoses through microbial fermentation. Importantly, plant biomass, if appropriately and effectively decomposed, is a potential inexpensive and highly renewable source of the hexose and pentose mixture. Recently, the engineered (to also catabolize pentoses) anaerobic bacterium Zymomonas mobilis has been widely discussed among the most promising microorganisms for the microbial production of ethanol fuel. However, Z. mobilis genome having been fully sequenced in 2005, there is still a small number of published studies of its in vivo physiology and limited use of the metabolic engineering experimental and computational toolboxes to understand its metabolic pathway interconnectivity and regulation towards the optimization of its hexose and pentose fermentation into ethanol.
机译:背景技术迫切需要发现替代的,可再生的,对环境友好的能源以及开发成本有效的“清洁”方法以将其转化成更高的燃料。在过去十年中,乙醇作为燃料的重要性显着提高,可以通过微生物发酵从己糖和戊糖中生产乙醇。重要的是,如果适当且有效地分解植物生物质,则它是己糖和戊糖混合物的潜在廉价且高度可再生的来源。最近,在用于乙醇燃料微生物生产的最有希望的微生物中,工程化的厌氧细菌运动发酵单胞菌(也可以分解戊糖)已得到广泛讨论。然而,运动发酵单胞菌基因组已于2005年进行了全面测序,目前尚有少量关于其体内生理的已发表研究,以及代谢工程实验和计算工具箱的使用有限,以了解其代谢途径的互连性和对最佳化的调控。其己糖和戊糖发酵成乙醇。

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