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The Low Energy-Coupling Respiration in Zymomonas mobilis Accelerates Flux in the Entner-Doudoroff Pathway

机译:运动发酵单胞菌(Zymomonas mobilis)的低能量耦合呼吸加快了Entner-Doudoroff通路中的通量。

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摘要

Performing oxidative phosphorylation is the primary role of respiratory chain both in bacteria and eukaryotes. Yet, the branched respiratory chains of prokaryotes contain alternative, low energy-coupling electron pathways, which serve for functions other than oxidative ATP generation (like those of respiratory protection, adaptation to low-oxygen media, redox balancing, etc.), some of which are still poorly understood. We here demonstrate that withdrawal of reducing equivalents by the energetically uncoupled respiratory chain of the bacterium Zymomonas mobilis accelerates its fermentative catabolism, increasing the glucose consumption rate. This is in contrast to what has been observed in other respiring bacteria and yeast. This effect takes place after air is introduced to glucose-consuming anaerobic cell suspension, and can be simulated using a kinetic model of the Entner-Doudoroff pathway in combination with a simple net reaction of NADH oxidation that does not involve oxidative phosphorylation. Although aeration hampers batch growth of respiring Z. mobilis culture due to accumulation of toxic byproducts, nevertheless under non-growing conditions respiration is shown to confer an adaptive advantage for the wild type over the non-respiring Ndh knock-out mutant. If cells get occasional access to limited amount of glucose for short periods of time, the elevated glucose uptake rate selectively improves survival of the respiring Z. mobilis phenotype.
机译:进行氧化磷酸化是细菌和真核生物中呼吸链的主要作用。然而,原核生物的分支呼吸链包含替代性的,低能量耦合的电子途径,除了氧化性ATP生成外,还具有其他功能(如呼吸保护,适应低氧介质,氧化还原平衡等),其中一些仍然知之甚少。我们在这里证明,运动发酵单胞菌的能量解偶联的呼吸链减少还原当量,可加速其发酵分解代谢,增加葡萄糖消耗率。这与在其他呼吸细菌和酵母中观察到的相反。在将空气引入消耗葡萄糖的厌氧细胞悬浮液中之后,就会发生这种效应,可以使用Entner-Doudoroff途径的动力学模型结合不涉及氧化磷酸化的简单NADH氧化净反应来模拟这种效应。尽管由于有毒副产物的积累,通气阻碍了运动发酵单胞菌培养物的分批生长,但是在非生长条件下,相对于非呼吸性Ndh敲除突变体,呼吸作用显示出对野生型具有适应性优势。如果细胞在短时间内偶尔获得有限量的葡萄糖,则升高的葡萄糖摄取率将选择性地提高呼吸运动发酵单胞菌表型的存活率。

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