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Effects of Oxygen Limitation on Xylose Fermentation, Intracellular Metabolites, and Key Enzymes of Neurospora crassa AS3.1602

机译:限氧对克氏梭菌AS3.1602木糖发酵,细胞内代谢产物和关键酶的影响

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The effects of oxygen limitation on xylose fermentation of Neurospora crassa AS3.1602 were studied using batch cultures. The maximum yield of ethanol was 0.34 g/g at oxygen transfer rate (OTR) of 8.4 mmol/L·h. The maximum yield of xylitol was 0.33 g/g at OTR of 5.1 mmol/L·h. Oxygen limitation greatly affected mycelia growth and xylitol and ethanol productions. The specific growth rate (μ) decreased 82% from 0.045 to 0.008 h?1 when OTR changed from 12.6 to 8.4 mmol/L·h. Intracellular metabolites of the pentose phosphate pathway, glycolysis, and tricarboxylic acid cycle were determined at various OTRs. Concentrations of most intracellular metabolites decreased with the increase in oxygen limitation. Intracellular enzyme activities of xylose reductase, xylitol dehydrogenase, and xylulokinase, the first three enzymes in xylose metabolic pathway, decreased with the increase in oxygen limitation, resulting in the decreased xylose uptake rate. Under all tested conditions, transaldolase and transketolase activities always maintained at low levels, indicating a great control on xylose metabolism. The enzyme of glucose-6-phosphate dehydrogenase played a major role in NADPH regeneration, and its activity decreased remarkably with the increase in oxygen limitation.
机译:使用分批培养技术研究了限氧对芥菜神经孢霉AS3.1602的木糖发酵的影响。在氧气传输速率(OTR)为8.4 mmol / L·h的情况下,乙醇的最大产量为0.34 g / g。在5.1 mmol / L·h的OTR下,木糖醇的最大产量为0.33 g / g。氧气限制极大地影响了菌丝体的生长以及木糖醇和乙醇的产生。当OTR从12.6改变为8.4 mmol / L·h时,比生长率(μ)从0.045降低至0.008 h?1 ,降低了82%。在各种OTR处测定了戊糖磷酸途径,糖酵解和三羧酸循环的细胞内代谢产物。大多数细胞内代谢物的浓度随着氧极限的增加而降低。木糖还原途径中的前三个酶木糖还原酶,木糖醇脱氢酶和木酮糖激酶的细胞内酶活性随着氧限制的增加而降低,导致木糖吸收率降低。在所有测试条件下,转醛缩酶和转酮酶的活性始终保持在较低水平,表明对木糖代谢的控制很大。葡萄糖-6-磷酸脱氢酶在NADPH再生中起主要作用,其活性随氧极限的增加而显着降低。

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