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Dual mechanisms regulating glutamate decarboxylases and accumulation of gamma-aminobutyric acid in tea (Camellia sinensis) leaves exposed to multiple stresses

机译:茶树叶片中谷氨酸脱羧酶和γ-氨基丁酸积累的双重调控机制

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摘要

γ-Aminobutyric acid (GABA) is one of the major inhibitory neurotransmitters in the central nervous system. It has multiple positive effects on mammalian physiology and is an important bioactive component of tea (Camellia sinensis). GABA generally occurs at a very low level in plants but GABA content increases substantially after exposure to a range of stresses, especially oxygen-deficiency. During processing of tea leaves, a combination of anoxic stress and mechanical damage are essential for the high accumulation of GABA. This is believed to be initiated by a change in glutamate decarboxylase activity, but the underlying mechanisms are unclear. In the present study we characterized factors regulating the expression and activity of three tea glutamate decarboxylase genes (CsGAD1, 2, and 3), and their encoded enzymes. The results suggests that, unlike the model plant Arabidopsis thaliana, there are dual mechanisms regulating the accumulation of GABA in tea leaves exposed to multiple stresses, including activation of CsGAD1 enzymatic activity by calmodulin upon the onset of the stress and accumulation of high levels of CsGAD2 mRNA induced by a combination of anoxic stress and mechanical damage.
机译:γ-氨基丁酸(GABA)是中枢神经系统中主要的抑制性神经递质之一。它对哺乳动物的生理学具有多种积极作用,是茶(茶花)的重要生物活性成分。 GABA通常在植物中的含量非常低,但是在暴露于一系列胁迫(尤其是缺氧)后,GABA的含量会大大增加。在茶叶加工过程中,缺氧胁迫和机械损伤的结合对于GABA的高积累至关重要。据信这是由谷氨酸脱羧酶活性的变化引发的,但是其潜在机理尚不清楚。在本研究中,我们表征了调节三个茶谷氨酸脱羧酶基因(CsGAD1、2和3)及其编码酶的表达和活性的因素。结果表明,与模型植物拟南芥不同,存在多种机制来调节暴露于多种胁迫下的茶叶中GABA的积累,包括在胁迫发生时通过钙调蛋白激活CsGAD1酶活性和积累高水平的CsGAD2。缺氧应激和机械损伤共同诱导的mRNA。

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