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腐败酵母拜耳接合酵母中的需氧糖代谢。

Aerobic sugar metabolism in the spoilage yeast Zygosaccharomyces bailii.

作者信息

Merico Annamaria, Capitanio Daniele, Vigentini Ileana, Ranzi Bianca Maria, Compagno Concetta

机构信息

Dipartimento di Scienze Biomolecolari e Biotecnologie, Università degli Studi di Milano, via Celoria 26, 20133, Milan, Italy.

出版信息

FEMS Yeast Res. 2003 Dec;4(3):277-83. doi: 10.1016/S1567-1356(03)00167-3.

Abstract

Despite the importance of some Zygosaccharomyces species as agents causing spoilage of food, the carbon and energy metabolism of most of them is yet largely unknown. This is the case with Zygosaccharomyces bailii. In this study the occurrence of the Crabtree effect in the petite-negative yeast Z. bailii ATCC 36947 was investigated. In this yeast the aerobic ethanol production is strictly dependent on the carbon source utilised. In glucose-limited continuous cultures a very low level of ethanol was produced. In fructose-limited continuous cultures ethanol was produced at a higher level and its production increased with the dilution rate. As a consequence, on fructose the onset of respiro-fermentative metabolism caused a reduction in biomass yield. An immediate aerobic alcoholic fermentation in Z. bailii was observed during the transition from sugar limitation to sugar excess, both on glucose and on fructose. The analysis of some key enzymes of the fermentative metabolism showed a high level of acetyl-CoA synthetase in Z. bailii growing on fructose. At high dilution rates, the activities of glucose- and fructose-phosphorylating enzymes, as well as of pyruvate decarboxylase and alcohol dehydrogenase, were higher in cells during growth on fructose than on glucose.

摘要

尽管某些接合酵母属物种作为导致食物变质的因素很重要,但它们中大多数的碳和能量代谢在很大程度上仍不为人所知。巴氏接合酵母就是这种情况。在本研究中,对小菌落阴性酵母巴氏接合酵母ATCC 36947中克奈特效应的发生情况进行了研究。在这种酵母中,有氧乙醇的产生严格依赖于所利用的碳源。在葡萄糖限制的连续培养中,乙醇产量非常低。在果糖限制的连续培养中,乙醇产量较高,且其产量随稀释率增加而增加。因此,在果糖上,呼吸发酵代谢的开始导致生物量产量降低。在从糖限制转变为糖过量的过程中,无论是在葡萄糖还是果糖上,都观察到巴氏接合酵母立即进行有氧酒精发酵。对发酵代谢的一些关键酶的分析表明,在以果糖为生长底物的巴氏接合酵母中,乙酰辅酶A合成酶水平很高。在高稀释率下,在果糖上生长的细胞中,葡萄糖和果糖磷酸化酶以及丙酮酸脱羧酶和乙醇脱氢酶的活性高于在葡萄糖上生长的细胞。

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