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Improvement of Cellulolytic Properties of Clostridium cellulolyticum by Metabolic Engineering

机译:代谢工程改善纤维素分解梭菌的纤维素分解特性

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Cellulolytic clostridia have evolved to catabolize lignocellulosic materials at a seasonal biorhythm, so their biotechnological exploitation requires genetic improvements. As high carbon flux leads to pyruvate accumulation, which is responsible for the cessation of growth of Clostridium cellulolyticum, this accumulation is decreased by heterologous expression of pyruvate decarboxylase and alcohol dehydrogenase from Zymomonas mobilis. In comparison with that of the wild strain, growth of the recombinant strain at the same specific rate but for 145 h instead of 80 h led to a 150% increase in cellulose consumption and a 180% increase in cell dry weight. The fermentation pattern was shifted significantly: lactate production decreased by 48%, whereas the concentrations of acetate and ethanol increased by 93 and 53%, respectively. This study demonstrates that the fermentation of cellulose, the most abundant and renewable polymer on earth, can be greatly improved by using genetically engineered C. cellulolyticum.
机译:纤维素分解梭菌已进化为以季节性生物节律分解木质纤维素物质,因此其生物技术开发需要遗传改良。由于高碳通量导致丙酮酸积累,这导致解纤梭菌的生长停止,因此,通过运动发酵单胞菌的丙酮酸脱羧酶和醇脱氢酶的异源表达减少了这种积累。与野生菌株相比,重组菌株以相同的特定速率生长,但从145小时而不是80小时开始生长,导致纤维素消耗增加了150%,细胞干重增加了180%。发酵模式发生了显着变化:乳酸产量下降了48%,而乙酸盐和乙醇的浓度分别上升了93%和53%。这项研究表明,使用基因工程解纤梭菌可大大改善纤维素(地球上最丰富和可再生的聚合物)的发酵。

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