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Activating glutamate decarboxylase activity by removing the autoinhibitory domain leads to hyper γ-aminobutyric acid (GABA) accumulation in tomato fruit

机译:通过去除自抑制域激活谷氨酸脱羧酶活性导致番茄果实中过度的γ-氨基丁酸(GABA)积累

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摘要

γ-Aminobutyric acid (GABA) is a ubiquitous non-protein amino acid with several health-promoting benefits. In many plants including tomato, GABA is synthesized via decarboxylation of glutamate in a reaction catalyzed by glutamate decarboxylase (GAD), which generally contains a C-terminal autoinhibitory domain. We previously generated transgenic tomato plants in which tomato GAD3 (SlGAD3) was expressed using the 35S promoter/NOS terminator expression cassette (35S-SlGAD3-NOS), yielding a four- to fivefold increase in GABA levels in red-ripe fruits compared to the control. In this study, to further increase GABA accumulation in tomato fruits, we expressed SlGAD3 with (SlGAD3OX) or without (SlGAD3ΔCOX) a putative autoinhibitory domain in tomato using the fruit ripening-specific E8 promoter and the Arabidopsis heat shock protein 18.2 (HSP) terminator. Although the GABA levels in SlGAD3OX fruits were equivalent to those in 35S-SlGAD3-NOS fruits, GABA levels in SlGAD3ΔCOX fruits increased by 11- to 18-fold compared to control plants, indicating that removing the autoinhibitory domain increases GABA biosynthesis activity. Furthermore, the increased GABA levels were accompanied by a drastic reduction in glutamate and aspartate levels, indicating that enhanced GABA biosynthesis affects amino acid metabolism in ripe-fruits. Moreover, SlGAD3ΔCOX fruits exhibited an orange-ripe phenotype, which was associated with reduced levels of both carotenoid and mRNA transcripts of ethylene-responsive carotenogenic genes, suggesting that over activation of GAD influences ethylene sensitivity. Our strategy utilizing the E8 promoter and HSP terminator expression cassette, together with SlGAD3 C-terminal deletion, would facilitate the production of tomato fruits with increased GABA levels.
机译:γ-氨基丁酸(GABA)是一种普遍存在的非蛋白质氨基酸,具有促进健康的多种功效。在包括番茄在内的许多植物中,GABA是在谷氨酸脱羧酶(GAD)催化的反应中通过谷氨酸的脱羧反应合成的,该反应通常包含C端自抑制域。我们以前曾生产过转基因番茄植株,其中使用35S启动子/ NOS终止子表达盒(35S-S1GAD3-NOS)表达番茄GAD3(SlGAD3),与红色成熟果实相比,GABA含量提高了4至5倍。控制。在这项研究中,为进一步增加番茄果实中的GABA积累,我们使用果实成熟特异性E8启动子和拟南芥热休克蛋白18.2(HSP)终止子表达了带有(SlGAD3OX)或不带有(S1GAD3ΔCOX)番茄中假定的自抑制域的SlGAD3。 。尽管SlGAD3OX果实中的GABA水平与35S-SlGAD3-NOS果实中的相同,但与对照植物相比,SlGAD3ΔCOX果实中的GABA水平提高了11至18倍,表明去除自抑制域可提高GABA的生物合成活性。此外,增加的GABA水平伴随着谷氨酸和天冬氨酸水平的急剧降低,表明增强的GABA生物合成影响成熟果实的氨基酸代谢。此外,SlGAD3ΔCOX水果表现出橙色成熟的表型,这与乙烯反应性类胡萝卜素基因的类胡萝卜素和mRNA转录物水平降低有关,表明GAD过度活化会影响乙烯敏感性。我们利用E8启动子和HSP终止子表达盒以及SlGAD3 C端缺失的策略将促进GABA水平升高的番茄果实的生产。

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