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根和叶对锌胁迫的代谢响应

Metabolic Responses of Roots and Leaves to Zinc Stress.

作者信息

Osmolovskaya Natalia, Bilova Tatiana, Gurina Anastasia, Orlova Anastasia, Vu Viet D, Sukhikh Stanislav, Zhilkina Tatiana, Frolova Nadezhda, Tarakhovskaya Elena, Kamionskaya Anastasia, Frolov Andrej

机构信息

Department of Plant Physiology and Biochemistry, St. Petersburg State University, 199034 St. Petersburg, Russia.

Laboratory of Analytical Biochemistry and Biotechnology, K.A. Timiryazev Institute of Plant Physiology of the Russian Academy of Science, 127276 Moscow, Russia.

出版信息

Plants (Basel). 2025 Jul 9;14(14):2119. doi: 10.3390/plants14142119.

Abstract

In recent decades, heavy metal pollution has become a significant environmental stress factor. Plants are characterized by high biochemical plasticity and can adjust their metabolism to ensure survival under a changing environment. Here we report, to our knowledge, the first gas chromatography-mass spectrometry (GC-MS)-based metabolomics study of Zn-induced stress responses in plants. The study was performed with root and leaf aqueous methanolic extracts after their lyophilization and sequential derivatization with methoxylamine hydrochloride and -methyl--(trimethylsilyl)trifluoroacetamide. In total, 419 derivatives were detected in the samples, and 144 of them could be putatively annotated. The metabolic shifts in seven-week-old plants in response to a seven-day treatment with 300 µmol/L ZnSO·7HO in nutrient solution were organ-specific and more pronounced in roots. Most of the responsive metabolites were up-regulated and dominated by sugars and sugar acids. The revealed effects could be attributed to the involvement of these metabolites in osmotic regulation, antioxidant protection and Zn complexation. A 59-fold up-regulation of gluconic acid in roots distinctly indicated enhanced glucose oxidation due to oxidative stress upon the Zn treatment. Gluconic acid might be further employed in Zn complexation. Pronounced Zn-induced up-regulation of salicylic acid in roots and shoots suggested a key role of this hormone in stress signaling and activation of Zn stress tolerance mechanisms. Overall, our study provides the first insight into the general trends of Zn-induced biochemical rearrangements and main adaptive metabolic shifts in .

摘要

近几十年来,重金属污染已成为一个重要的环境胁迫因素。植物具有高度的生化可塑性,能够调节自身代谢以确保在不断变化的环境中生存。据我们所知,本文首次报道了基于气相色谱 - 质谱联用(GC - MS)的植物锌诱导应激反应的代谢组学研究。该研究采用根和叶的甲醇水溶液提取物,经冻干后依次用盐酸甲氧基胺和N - 甲基 - N - (三甲基硅基)三氟乙酰胺进行衍生化处理。样品中共检测到419种衍生物,其中144种可进行推定注释。在营养液中用300 μmol/L ZnSO₄·7H₂O处理7天,对7周龄植物的代谢变化具有器官特异性,且在根中更为明显。大多数响应代谢物上调,且以糖类和糖酸为主。这些效应可能归因于这些代谢物参与渗透调节、抗氧化保护和锌络合。根中葡萄糖酸上调59倍,明显表明锌处理后由于氧化应激导致葡萄糖氧化增强。葡萄糖酸可能进一步用于锌络合。锌诱导根和芽中水杨酸明显上调,表明该激素在应激信号传导和锌胁迫耐受机制激活中起关键作用。总体而言,我们的研究首次揭示了锌诱导的生化重排的总体趋势以及植物中的主要适应性代谢变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dbaf/12300844/08eac633d3e1/plants-14-02119-g001.jpg

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