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A mutation in the COX5 gene of the yeast Scheffersomyces stipitis alters utilization of amino acids as carbon source, ethanol formation and activity of cyanide insensitive respiration

机译:酵母裂殖酵母COX5基因的突变改变氨基酸作为碳源的利用,乙醇的形成以及氰化物不敏感呼吸的活性

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摘要

Scheffersomyces stipitis PJH was mutagenized by random integrative mutagenesis and the integrants were screened for lacking the ability to grow with glutamate as sole carbon source. One of the two isolated mutants was damaged in the COX5 gene, which encodes a subunit of the cytochrome c oxidase. BLAST searches in the genome of Sc. stipitis revealed that only one singular COX5 gene exists in Sc. stipitis, in contrast to Saccharomyces cerevisiae, where two homologous genes are present. Mutant cells had lost the ability to grow with the amino acids glutamate, proline or aspartate and other non-fermentable carbon sources, such as acetic acid and ethanol, as sole carbon sources. Biomass formation of the mutant cells in medium containing glucose or xylose as carbon source was lower compared with the wild-type cells. However, yields and specific ethanol formation of the mutant were much higher, especially under conditions of higher aeration. The mutant cells lacked both cytochrome c oxidase activity and cyanide-sensitive respiration, whereas ADH and PDC activities were distinctly enhanced. SHAM-sensitive respiration was obviously essential for the fermentative metabolism, because SHAM completely abolished growth of the mutant cells with both glucose or xylose as carbon source
机译:通过随机整合诱变法对Scheffersomyces stipitis PJH进行了诱变,并筛选了缺乏以谷氨酸为唯一碳源生长的整合子。两个分离的突变体之一在COX5基因中受损,该基因编码细胞色素C氧化酶的一个亚基。 BLAST在Sc的基因组中搜索。胸膜炎显示,Sc中仅存在一个奇异的COX5基因。与存在两个同源基因的酿酒酵母相反,这种细菌会感染脂肪。突变细胞丧失了与氨基酸,谷氨酸,脯氨酸或天冬氨酸以及其他不可发酵碳源(例如乙酸和乙醇)作为唯一碳源一起生长的能力。与野生型细胞相比,在含有葡萄糖或木糖作为碳源的培养基中突变细胞的生物量形成较低。但是,该突变体的产率和特定乙醇的形成要高得多,尤其是在较高通气条件下。突变细胞既缺乏细胞色素c氧化酶活性,也缺乏氰化物敏感的呼吸作用,而ADH和PDC活性却明显增强。 SHAM敏感的呼吸显然对发酵代谢至关重要,因为SHAM完全消除了以葡萄糖或木糖为碳源的突变细胞的生长。

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