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Engineering of enhanced glycine betaine synthesis improves drought tolerance in maize

机译:增强甘氨酸甜菜碱合成的工程改善了玉米的耐旱性

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Glycine betaine plays an important role in some plants, including maize, in conditions of abiotic stress, but different maize varieties vary in their capacity to accumulate glycine betaine. An elite maize inbred line DH4866 was transformed with the betA gene from Escherichia coli encoding choline dehydrogenase (EC 1.1.99.1), a key enzyme in the biosynthesis of glycine betaine from choline. The transgenic maize plants accumulated higher levels of glycine betaine and were more tolerant to drought stress than wild-type plants (non-transgenic) at germination and the young seedling stage. Most importantly, the grain yield of transgenic plants was significantly higher than that of wild-type plants after drought treatment. The enhanced glycine betaine accumulation in transgenic maize provides greater protection of the integrity of the cell membrane and greater activity of enzymes compared with wild-type plants in conditions of drought stress.
机译:甘氨酸甜菜碱在一些植物中发挥着重要作用,包括玉米,玉米在非生物应激条件下,但不同的玉米品种的能力变化了积累甘氨酸甜菜碱的能力。 用来自胆碱脱氢酶(EC 1.1.99.1)的胆碱脱氢酶(EC 1.1.99.1)的β基因转化了精英玉米近交系DH4866,来自胆碱的甘氨酸甜菜碱生物合成中的一个关键酶。 转基因玉米植物积累了较高水平的甘氨酸甜菜碱,比萌发和幼苗阶段的野生型植物(非转基因)和幼苗阶段更耐受干旱胁迫。 最重要的是,在干旱治疗后转基因植物的谷物产量明显高于野生型植物。 转基因玉米中增强的甘氨酸甜菜碱积累提供了更大的保护细胞膜的完整性以及与干旱胁迫条件的野生型植物相比的酶更大的酶活性。

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