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乳酸克鲁维酵母KlPDA1基因的失活导致丙酮酸脱氢酶活性丧失,损害在葡萄糖上的生长并引发有氧酒精发酵。

Inactivation of the Kluyveromyces lactis KlPDA1 gene leads to loss of pyruvate dehydrogenase activity, impairs growth on glucose and triggers aerobic alcoholic fermentation.

作者信息

Zeeman Anne-Marie, Luttik Marijke A H, Thiele Claudia, van Dijken Johannes P, Pronk Jack T, Steensma H Yde

机构信息

Kluyver Institute of Biotechnology, Delft University of Technology, Julianalaan 67, 2628 BC Delft, The Netherlands.

Institute of Molecular Plant Sciences, Clusius Laboratory, Leiden University, Wassenaarseweg 64, 2333 AL Leiden, The Netherlands.

出版信息

Microbiology (Reading). 1998 Dec;144 ( Pt 12):3437-3446. doi: 10.1099/00221287-144-12-3437.

Abstract

The KlPDA1 gene, encoding the E1alpha subunit of the mitochondrial pyruvate-dehydrogenase (PDH) complex was isolated from a Kluyveromyces lactis genomic library by screening with a 1.1 kb internal fragment of the Saccharomyces cerevisiae PDA1 gene. The predicted amino acid sequence encoded by KlPDA1 showed 87% similarity and 79% identity to its S. cerevisiae counterpart. Disruption of KIPDA1 resulted in complete absence of PDH activity in cell extracts. The maximum specific growth rate on glucose of null mutants was 3.5-fold lower than that of the wild-type, whereas growth on ethanol was unaffected. Wild-type K. lactis CBS 2359 exhibits a Crabtree-negative phenotype, i.e. no ethanol was produced in aerobic batch cultures grown on glucose. In contrast, substantial amounts of ethanol and acetaldehyde were produced in aerobic cultures of an isogenic Klpda1 null mutant. A wild-type specific growth rate was restored after introduction of an intact KlPDA1 gene but not, as previously found for S. cerevisiae pda1 mutants, by cultivation in the presence of leucine. The occurrence of aerobic fermentation and slow growth of the Klpda1 null mutant indicate that, although present, the enzymes of the PDH bypass (pyruvate decarboxylase, acetaldehyde dehydrogenase and acetyl-CoA synthetase) could not efficiently replace the PDH complex during batch cultivation on glucose. Only at relatively low growth rates (D = 0.10 h(-1)) in aerobic, glucose-limited chemostat cultures, could the PDH bypass completely replace the PDH complex, thus allowing fully respiratory growth. This resulted in a lower biomass yield [g biomass (g glucose)-1] than in the wild-type due to a higher consumption of ATP in the PDH bypass compared to the formation of acetyl-CoA via the PDH complex.

摘要

通过用酿酒酵母PDA1基因的1.1 kb内部片段进行筛选,从乳酸克鲁维酵母基因组文库中分离出编码线粒体丙酮酸脱氢酶(PDH)复合体E1α亚基的KlPDA1基因。KlPDA1编码的预测氨基酸序列与其酿酒酵母对应序列显示出87%的相似性和79%的同一性。KIPDA1的破坏导致细胞提取物中完全没有PDH活性。缺失突变体在葡萄糖上的最大比生长速率比野生型低3.5倍,而在乙醇上的生长不受影响。野生型乳酸克鲁维酵母CBS 2359表现出克奈特阴性表型,即在以葡萄糖为生长底物的好氧分批培养中不产生乙醇。相反,在同基因的Klpda1缺失突变体的好氧培养物中产生了大量的乙醇和乙醛。引入完整的KlPDA1基因后恢复了野生型的比生长速率,但不像之前在酿酒酵母pda1突变体中发现的那样,在亮氨酸存在的情况下培养不能恢复。Klpda1缺失突变体的好氧发酵和缓慢生长表明,尽管存在PDH旁路的酶(丙酮酸脱羧酶、乙醛脱氢酶和乙酰辅酶A合成酶),但在以葡萄糖为底物的分批培养过程中,它们不能有效地替代PDH复合体。只有在好氧、葡萄糖限制的恒化器培养中相对较低的生长速率(D = 0.10 h(-1))下,PDH旁路才能完全替代PDH复合体,从而实现完全的呼吸生长。由于与通过PDH复合体形成乙酰辅酶A相比,PDH旁路中ATP的消耗更高,这导致生物量产量[克生物量/(克葡萄糖)-1]比野生型低。

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