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Transcriptomic and biochemical evidence for the role of lysine biosynthesis against linoleic acid hydroperoxide-induced stress in Saccharomyces cerevisiae

机译:酿酒酵母中赖氨酸生物合成对亚油酸氢过氧化物诱导的应激的作用的转录组学和生化证据

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Amino acid biosynthesis forms part of an integrated stress response against oxidants in Saccharomyces cerevisiae and higher eukaryotes. Here we show an essential protective role of the L-lysine biosynthesis pathway in response to the oxidative stress condition induced by the lipid oxidant-linoleic acid hydroperoxide (LoaOOH), by means of transcriptomic profiling and phenotypic analysis, and using the deletion mutant dal80 Delta and lysine auxotroph lys1 Delta. A comprehensive up-regulation of lysine biosynthetic genes (LYS1, LYS2, LYS4, LYS9, LYS12, LYS20 and LYS21) was revealed in dal80 Delta following the oxidant challenge. The lysine auxotroph (lys1 Delta) exhibited a significant decrease in growth compared with that of BY4743 upon exposure to LoaOOH, albeit with the sufficient provision of lysine in the medium. Furthermore, the growth of wild type BY4743 exposed to LoaOOH was also greatly reduced in lysine-deficient conditions, despite a full complement of lysine biosynthetic genes. Amino acid analysis of LoaOOH-treated yeast showed that the level of cellular lysine remained unchanged throughout oxidant challenge, suggesting that the induced lysine biosynthesis leads to a steady-state metabolism as compared to the untreated yeast cells. Together, these findings demonstrate that lysine availability and its biosynthesis pathway play an important role in protecting the cell from lipid peroxide-induced oxidative stress, which is directly related to understanding environmental stress and industrial yeast management in brewing, wine making and baking.
机译:氨基酸生物合成是酿酒酵母和高等真核生物中针对氧化剂的综合应激反应的一部分。在这里,我们通过转录组分析和表型分析,以及使用缺失突变体dal80 Delta,展示了L-赖氨酸生物合成途径在响应脂质氧化剂-亚油酸氢过氧化物(LoaOOH)诱导的氧化应激条件中的重要保护作用。和赖氨酸营养缺陷型lys1 Delta。在dal80 Delta中,氧化挑战后发现了赖氨酸生物合成基因(LYS1,LYS2,LYS4,LYS9,LYS12,LYS20和LYS21)的全面上调。赖氨酸营养缺陷型(lys1 Delta)与BY4743暴露于LoaOOH相比,表现出生长的显着下降,尽管培养基中提供了足够的赖氨酸。此外,尽管赖氨酸生物合成基因已完全互补,但在赖氨酸缺乏的条件下,暴露于LoaOOH的野生型BY4743的生长也大大降低。 LoaOOH处理的酵母的氨基酸分析表明,在整个氧化剂攻击过程中,细胞赖氨酸的水平保持不变,这表明与未处理的酵母细胞相比,诱导的赖氨酸生物合成导致稳态代谢。总之,这些发现表明,赖氨酸的可利用性及其生物合成途径在保护细胞免受脂质过氧化物诱导的氧化应激中起着重要作用,这直接与了解环境压力以及酿造,酿酒和烘焙中的工业酵母管理有关。

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