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Energetics and kinetics of maltose transport in Saccharomyces cerevisiae: a continuous culture study.

机译:酿酒酵母中麦芽糖转运的能量学和动力学:连续培养研究。

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In Saccharomyces cerevisiae, maltose is transported by a proton symport mechanism, whereas glucose transport occurs via facilitated diffusion. The energy requirement for maltose transport was evaluated with a metabolic model based on an experimental value of YATP for growth on glucose and an ATP requirement for maltose transport of 1 mol.mol-1. The predictions of the model were verified experimentally with anaerobic, sugar-limited chemostat cultures growing on a range of maltose-glucose mixtures at a fixed dilution rate of 0.1 h-1. The biomass yield (grams of cells.gram of sugar-1) decreased linearly with increasing amounts of maltose in the mixture. The yield was 25% lower during growth on maltose than during that on glucose, in agreement with the model predictions. During sugar-limited growth, the residual concentrations of maltose and glucose in the culture increased in proportion to their relative concentrations in the medium feed. From the residual maltose concentration, the in situ rates of maltose consumption by cultures, and the Km of the maltose carrier for maltose, it was calculated that the amount of this carrier was proportional to the in situ maltose consumption rate. This was also found for the amount of intracellular maltose. These two maltose-specific enzymes therefore exert high control over the maltose flux in S. cerevisiae in anaerobic, sugar-limited, steady-state cultures.
机译:在酿酒酵母中,麦芽糖通过质子同向转运机制转运,而葡萄糖转运则通过促进扩散发生。麦芽糖运输的能量需求是根据新陈代谢模型评估的,该代谢模型基于YATP在葡萄糖上生长的实验值和1 mol.mol-1的麦芽糖运输的ATP需求。该模型的预测已通过厌氧,糖有限的恒化器培养物进行了实验验证,该培养物在一系列麦芽糖-葡萄糖混合物中以0.1 h-1的固定稀释率生长。随着混合物中麦芽糖量的增加,生物质产量(细胞克数,糖-1克数)线性下降。与模型预测一致,在麦芽糖上生长期间的产率比在葡萄糖上生长的产率低25%。在糖分有限的生长过程中,培养物中麦芽糖和葡萄糖的残留浓度与它们在培养基饲料中的相对浓度成比例地增加。从残留的麦芽糖浓度,培养物中麦芽糖的原位消耗率以及麦芽糖的麦芽糖载体的Km,可以计算出该载体的量与原位麦芽糖的消耗率成比例。还发现了细胞内麦芽糖的量。因此,这两种麦芽糖特异性酶在厌氧,糖受限,稳态培养中对酿酒酵母中的麦芽糖通量具有高度控制作用。

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