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添加硫酸锌对长期乙酸胁迫处理的酿酒酵母动态代谢谱的影响以及锌抗氧化作用中关键代谢物的鉴定

The impact of zinc sulfate addition on the dynamic metabolic profiling of Saccharomyces cerevisiae subjected to long term acetic acid stress treatment and identification of key metabolites involved in the antioxidant effect of zinc.

作者信息

Wan Chun, Zhang Mingming, Fang Qing, Xiong Liang, Zhao Xinqing, Hasunuma Tomohisa, Bai Fengwu, Kondo Akihiko

机构信息

School of Life Science and Biotechnology, Dalian University of Technology, Dalian 116024, China.

出版信息

Metallomics. 2015 Feb;7(2):322-32. doi: 10.1039/c4mt00275j.

DOI:10.1039/c4mt00275j
PMID:25554248
Abstract

The mechanisms of how zinc protects the cells against acetic acid toxicity and acts as an antioxidant are still not clear. Here we present results of the metabolic profiling of the eukaryotic model yeast species Saccharomyces cerevisiae subjected to long term high concentration acetic acid stress treatment in the presence and absence of zinc supplementation. Zinc addition decreased the release of reactive oxygen species (ROS) in the presence of chronic acetic acid stress. The dynamic changes in the accumulation of intermediates in central carbon metabolism were observed, and higher contents of intracellular alanine, valine and serine were observed by zinc supplementation. The most significant change was observed in alanine content, which is 3.51-fold of that of the control culture in cells in the stationary phase. Subsequently, it was found that 0.5 g L(-1) alanine addition resulted in faster glucose consumption in the presence of 5 g L(-1) acetic acid, and apparently decreased ROS accumulation in zinc-supplemented cells. This indicates that alanine exerted its antioxidant effect at least partially through the detoxification of acetic acid. In addition, intracellular glutathione (GSH) accumulation was enhanced by zinc addition, which is related to the protection of yeast cells from the oxidative injury caused by acetic acid. Our studies revealed for the first time that zinc modulates cellular amino acid metabolism and redox balance, especially biosynthesis of alanine and glutathione to exert its antioxidant effect.

摘要

锌如何保护细胞免受乙酸毒性影响并作为抗氧化剂发挥作用的机制仍不清楚。在此,我们展示了在添加和不添加锌的情况下,真核模式酵母物种酿酒酵母在长期高浓度乙酸胁迫处理下的代谢谱分析结果。在慢性乙酸胁迫存在的情况下,添加锌减少了活性氧(ROS)的释放。观察到中心碳代谢中间产物积累的动态变化,并且通过添加锌观察到细胞内丙氨酸、缬氨酸和丝氨酸的含量更高。在丙氨酸含量上观察到最显著的变化,在稳定期细胞中其含量是对照培养物的3.51倍。随后,发现添加0.5 g L(-1)丙氨酸会导致在存在5 g L(-1)乙酸的情况下葡萄糖消耗更快,并且明显减少了添加锌的细胞中ROS的积累。这表明丙氨酸至少部分地通过乙酸解毒发挥其抗氧化作用。此外,添加锌增强了细胞内谷胱甘肽(GSH)的积累,这与保护酵母细胞免受乙酸引起的氧化损伤有关。我们的研究首次揭示,锌调节细胞氨基酸代谢和氧化还原平衡,特别是丙氨酸和谷胱甘肽的生物合成以发挥其抗氧化作用。

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