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Metabolic pathways regulated by γ-aminobutyric acid (GABA) contributing to heat tolerance in creeping bentgrass (Agrostis stolonifera)

机译:通过在匍匐翦股颖有助于耐热性γ氨基丁酸(GABA)调节代谢途径(匍匐翦股颖)

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γ-Aminobutyric acid is a non-protein amino acid involved in various metabolic processes. The objectives of this study were to examine whether increased GABA could improve heat tolerance in cool-season creeping bentgrass through physiological analysis, and to determine major metabolic pathways regulated by GABA through metabolic profiling. Plants were pretreated with 0.5?mM GABA or water before exposed to non-stressed condition (21/19?°C) or heat stress (35/30?°C) in controlled growth chambers for 35 d. The growth and physiological analysis demonstrated that exogenous GABA application significantly improved heat tolerance of creeping bentgrass. Metabolic profiling found that exogenous application of GABA led to increases in accumulations of amino acids (glutamic acid, aspartic acid, alanine, threonine, serine, and valine), organic acids (aconitic acid, malic acid, succinic acid, oxalic acid, and threonic acid), sugars (sucrose, fructose, glucose, galactose, and maltose), and sugar alcohols (mannitol and myo-inositol). These findings suggest that GABA-induced heat tolerance in creeping bentgrass could involve the enhancement of photosynthesis and ascorbate-glutathione cycle, the maintenance of osmotic adjustment, and the increase in GABA shunt. The increased GABA shunt could be the supply of intermediates to feed the tricarboxylic acid cycle of respiration metabolism during a long-term heat stress, thereby maintaining metabolic homeostasis.
机译:γ-氨基丁酸是涉及各种代谢过程的非蛋白质氨基酸。本研究的目标是通过生理分析来研究增加的GABA是否可以提高凉爽季节蠕动BentGrass中的耐热性,并通过代谢分析确定由GABA调节的主要代谢途径。在受控生长室中暴露于非应激条件(21/19℃)或加热应激(35/30Ω·℃)之前,用0.5Ωmmgaba或水预处理植物。生长和生理学分析表明,外源性GABA应用显着改善了蠕变本草的耐热性。代谢分析发现,GABA的外源性应用导致氨基酸累积增加(谷氨酸,天冬氨酸,丙氨酸,苏氨酸,丝氨酸和缬氨酸),有机酸(Aconitic酸,苹果酸,琥珀酸,草酸和鼻子)酸),糖(蔗糖,果糖,葡萄糖,半乳糖和麦芽糖),以及糖醇(甘露醇和肌醇)。这些研究结果表明,匍匐前进的GABA诱导的耐热性可能涉及增强光合作用和抗坏血酸谷胱甘肽循环,维持渗透调节,以及GABA分流的增加。增加的GABA分流器可以是在长期热应激期间供给呼吸代谢的三羧酸循环的中间体的供应,从而保持代谢稳态。

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