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Fermentative hydrogen yields from different sugars by batch cultures of metabolically engineered Escherichia coli DJT135

机译:通过代谢工程化大肠杆菌DJT135的分批培养从不同的糖中发酵产氢

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摘要

Future sustainable production of biofuels will depend upon the ability to use complex substrates present in biomass if the use of simple sugars derived from food crops is to be avoided. Therefore, organisms capable of using a variety of fermentable carbon sources must be found or developed for processes that could produce hydrogen via fermentation. Here we have examined the ability of a metabolically engineered strain of Escherichia coli, DJT135, to produce hydrogen from glucose as well as various other carbon sources, including pentoses. The effects of pH, temperature and carbon source were investigated in batch experiments. Maximal hydrogen production from glucose was obtained at an initial pH of 6.5 and temperature of 35 ℃. Kinetic growth studies showed that the μmax was 0.0495 h~(-1) with a Ks of 0.0274 g L~(-1) when glucose was the sole carbon source in M9 (1X) minimal medium. Among the many sugar and sugar derivatives tested, hydrogen yields were highest with fructose, sorbitol and D-glucose; 1.27, 1.46 and 1.51 mol H_2 mol~(-1) substrate respectively.
机译:如果要避免使用从粮食作物中提取的单糖,未来生物燃料的可持续生产将取决于使用生物质中复杂基质的能力。因此,必须发现或开发出能够利用多种可发酵碳源的生物,以通过发酵产生氢。在这里,我们已经检查了大肠杆菌的代谢工程菌株DJT135从葡萄糖以及各种其他碳源(包括戊糖)产生氢的能力。在分批实验中研究了pH,温度和碳源的影响。在初始pH值为6.5且温度为35℃时,从葡萄糖中获得的氢气最大产量。动力学生长研究表明,当葡萄糖是M9(1X)基本培养基中唯一的碳源时,μmax为0.0495 h〜(-1),Ks为0.0274 g L〜(-1)。在测试的许多糖和糖衍生物中,果糖,山梨糖醇和D-葡萄糖的氢收率最高。分别为1.27、1.46和1.51 mol H_2 mol〜(-1)底物。

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