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首页> 外文期刊>Plant Physiology and Biochemistry >iTRAQ-based proteomics reveals key role of gamma-aminobutyric acid (GABA) in regulating drought tolerance in perennial creeping bentgrass (Agrostis stolonifera)
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iTRAQ-based proteomics reveals key role of gamma-aminobutyric acid (GABA) in regulating drought tolerance in perennial creeping bentgrass (Agrostis stolonifera)

机译:基于ITRAQ的蛋白质组学揭示了γ-氨基丁酸(GABA)在常年蠕动Bentgrass(Agrostis Stolonifera)中调节耐旱性的关键作用

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gamma-Aminobutyric acid (GABA), a non-proteinaceous amino acid, modulates plant growth and stress tolerance. However, the potential role of GABA in regulating key metabolic pathways and stress-defensive proteins against drought in plants has never been explored. Creeping bentgrass (Agrostis stolonifera) plants were pretreated with or without GAGA and then subjected to water stress for 8 days in controlled growth chambers (23/19 degrees C, day/night). Physiological analysis showed that elevated endogenous GABA level via exogenous GABA application significantly mitigated water stress damage to creeping bentgrass, as manifested by increased leaf relative water content, water use efficiency, osmotic adjustment (OA), photochemical efficiency (Fv/Fm), net photosynthetic rate, and reduced oxidative damage. iTRAQ-based proteomics found that enhanced chaperones accumulation, carbohydrates, amino acids, and energy metabolism played important roles in protein protection, OA, energy maintenance, and metabolic balance, which is important adaptive response to drought stress in creeping bentgrass. The GABA further promoted energy production and conversion, antioxidant defense, and DHN3 accumulation that were essential for energy requirement, ROS-scavenging, and the prevention of cell dehydration in leaf during drought stress. In addition, GABA-treated plants maintained significantly higher abundance of dicarboxylate transporter 2.1, ATP-dependent zinc metalloprotease, receptor-like protein kinase HERK1, o-acyltransferase WSD1, omega-6 fatty acid desaturase, and two-component response regulator ORR21 than untreated plants under drought stress. The result provides new evidences that GABA-induced drought tolerance is possibly involved in the improvement of nitrogen recycling, protection of photosystem II, mitigation of drought-depressed cell elongation, wax biosynthesis, fatty acid desaturase, and delaying leaf senescence in creeping bentgrass.
机译:γ-氨基丁酸(GABA),非蛋白质氨基酸,调节植物生长和胁迫耐受性。然而,GABA在调节关键代谢途径和压力防御蛋白质中的潜在作用从未被探索过植物中的干旱。用Gaga预处理匍匐的BentGrass(Agrostis stolonifera)植物,然后在受控生长室(23/19℃,日/夜)进行水胁迫8天。生理学分析表明,通过外源GABA应用升高的内源性GABA水平显着减轻了水分胁迫损伤对爬行的浮出草,如叶片相对含水量增加,水用效率,渗透效率(OA),光化学效率(FV / FM),净光合作用速率,降低氧化损伤。基于ITRAQ的蛋白质组学发现,增强的伴侣寡克积累,碳水化合物,氨基酸和能量代谢在蛋白质保护,OA,能量维护和代谢平衡中起重要作用,这是对蠕动Bentgrass对干旱胁迫的重要适应性应对。 GABA进一步促进了能量产量和转化,抗氧化防御和DHN3积累,这对于能源需求,ROS - 清除和防止干旱胁迫期间叶片中的细胞脱水。此外,GABA处理的植物保持明显较高的二羧酸盐转运蛋白转运蛋白酶2.1,ATP依赖性锌金属蛋白酶,受体样蛋白激酶Herk1,O-酰基转移酶WSD1,Omega-6脂肪酸去饱和酶,以及两个组分响应调节器ORR21而不是未处理的干旱胁迫下的植物。该结果提供了新的证据,即GABA诱导的干旱耐受性可能参与改善氮回收,照相保护,减轻干旱抑制细胞伸长,蜡生物合成,脂肪酸去饱和酶,以及延迟爬行的Bentgrass中的叶片衰老。

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