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首页> 外文期刊>AMB Express >Metabolome analysis of Saccharomyces cerevisiae and optimization of culture medium for S -adenosyl- l -methionine production
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Metabolome analysis of Saccharomyces cerevisiae and optimization of culture medium for S -adenosyl- l -methionine production

机译:酿酒酵母的代谢组学分析和培养基的优化-S-腺苷-1-蛋氨酸的生产

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摘要

S-Adenosyl-l-methionine (SAM) is a fine chemical used as a nutritional supplement and a prescription drug. It is industrially produced using Saccharomyces cerevisiae owing to its high SAM content. To investigate the optimization of culture medium components for higher SAM production, metabolome analysis was conducted to compare the intracellular metabolite concentrations between Kyokai no. 6 (high SAM-producing) and laboratory yeast S288C (control) under different SAM production conditions. Metabolome analysis and the result of principal component analysis showed that the rate-limiting step for SAM production was ATP supply and the levels of degradation products of adenosine nucleotides were higher in Kyokai 6 strain than in the S288C strain under the l-methionine supplemented condition. Analysis of ATP accumulation showed that the levels of intracellular ATP in the Kyokai 6 strain were also higher compared to those in the S288C strain. Furthermore, as expected from metabolome analysis, the SAM content of Kyokai 6 strain cultivated in the medium without yeast extract increased by 2.5-fold compared to that in the additional condition, by increasing intracellular ATP level with inhibited cell growth. These results suggest that high SAM production is attributed to the enhanced ATP supply with l-methionine condition and high efficiency of intracellular ATP consumption.
机译:S-腺苷-1-蛋氨酸(SAM)是用作营养补充剂和处方药的精细化学品。由于它的高SAM含量,使用酿酒酵母在工业上生产。为了研究用于更高SAM产量的培养基成分的优化,进行了代谢组分析以比较Kyokai no.2之间的细胞内代谢物浓度。 6(高SAM产量)和实验室酵母S288C(对照)在不同的SAM生产条件下。代谢组学分析和主成分分析结果表明,在补充L-蛋氨酸的条件下,Kyokai 6菌株生产SAM的限速步骤是ATP供应,腺苷核苷酸的降解产物水平高于S288C菌株。 ATP积累的分析表明,Kyokai 6菌株的细胞内ATP水平也高于S288C菌株。此外,如从代谢组学分析所预期的那样,在无酵母提取物的培养基中培养的Kyokai 6菌株的SAM含量比其他条件下增加了2.5倍,这是由于细胞内ATP含量升高而细胞生长受到抑制。这些结果表明,高SAM产生归因于L-蛋氨酸条件下增强的ATP供应和细胞内ATP消耗的高效率。

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