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γ-氨基丁酸(GABA)预处理通过增强抗氧化防御和有机代谢物重塑缓解酸铝对匍匐翦股颖根系的毒性。

γ-Aminobutyric acid (GABA) priming alleviates acid-aluminum toxicity to roots of creeping bentgrass via enhancements in antioxidant defense and organic metabolites remodeling.

机构信息

College of Grassland Science and Technology, Sichuan Agricultural University, Chengdu, 61130, China.

出版信息

Planta. 2024 Jun 19;260(1):33. doi: 10.1007/s00425-024-04461-8.

DOI:10.1007/s00425-024-04461-8
PMID:38896325
Abstract

γ-Aminobutyric acid alleviates acid-aluminum toxicity to roots associated with enhanced antioxidant metabolism as well as accumulation and transportation of citric and malic acids. Aluminum (Al) toxicity has become the main limiting factor for crop growth and development in acidic soils and is further being aggravated worldwide due to continuous industrial pollution. The current study was designed to examine effects of GABA priming on alleviating acid-Al toxicity in terms of root growth, antioxidant defense, citrate and malate metabolisms, and extensive metabolites remodeling in roots under acidic conditions. Thirty-seven-day-old creeping bentgrass (Agrostis stolonifera) plants were used as test materials. Roots priming with or without 0.5 mM GABA for 3 days were cultivated in standard nutrient solution for 15 days as control or subjected to nutrient solution containing 5 mM AlCl·6HO for 15 days as acid-Al stress treatment. Roots were sampled for determinations of root characteristics, physiological and biochemical parameters, and metabolomics. GABA priming significantly alleviated acid-Al-induced root growth inhibition and oxidative damage, despite it promoted the accumulation of Al in roots. Analysis of metabolomics showed that GABA priming significantly increased accumulations of organic acids, amino acids, carbohydrates, and other metabolites in roots under acid-Al stress. In addition, GABA priming also significantly up-regulated key genes related to accumulation and transportation of malic and citric acids in roots under acid-Al stress. GABA-regulated metabolites participated in tricarboxylic acid cycle, GABA shunt, antioxidant defense system, and lipid metabolism, which played positive roles in reactive oxygen species scavenging, energy conversion, osmotic adjustment, and Al ion chelation in roots.

摘要

γ-氨基丁酸缓解酸铝对根系的毒性,增强抗氧化代谢,以及柠檬酸和苹果酸的积累和转运。铝(Al)毒性已成为酸性土壤中作物生长和发育的主要限制因素,并且由于持续的工业污染,在全球范围内进一步加剧。本研究旨在研究 GABA 引发处理对缓解酸性条件下根系生长、抗氧化防御、柠檬酸和苹果酸代谢以及广泛代谢物重塑方面酸 Al 毒性的影响。以匍匐翦股颖(Agrostis stolonifera)37 天大的植株为试验材料。用或不用 0.5mM GABA 对根系进行 3 天的引发处理,然后在标准营养液中培养 15 天作为对照,或在含有 5mM AlCl·6HO 的营养液中培养 15 天作为酸 Al 胁迫处理。对根系进行采样,以测定根系特性、生理生化参数和代谢组学。尽管 GABA 引发处理促进了根系中 Al 的积累,但它显著缓解了酸 Al 诱导的根系生长抑制和氧化损伤。代谢组学分析表明,GABA 引发处理显著增加了酸 Al 胁迫下根系中有机酸、氨基酸、碳水化合物和其他代谢物的积累。此外,GABA 引发处理还显著上调了酸 Al 胁迫下根系中与柠檬酸和苹果酸积累和转运相关的关键基因。GABA 调节的代谢物参与三羧酸循环、GABA 分流、抗氧化防御系统和脂质代谢,在清除活性氧、能量转换、渗透调节和根系中 Al 离子螯合方面发挥了积极作用。

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