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Isoprene production in transgenic tobacco alters isoprenoid, non-structural carbohydrate and phenylpropanoid metabolism, and protects photosynthesis from drought stress

机译:转基因烟草中异戊二烯的产生改变了类异戊二烯,非结构性碳水化合物和苯丙烷的代谢,并保护光合作用免受干旱胁迫

摘要

Isoprene strengthens thylakoid membranes and scavenges stress-induced oxidative species. The idea that isoprene production might also influence isoprenoid and phenylpropanoid pathways under stress conditions was tested. We used transgenic tobacco to compare physiological and biochemical traits of isoprene-emitting (IE) and non-emitting (NE) plants exposed to severe drought and subsequent re-watering. Photosynthesis was less affected by drought in IE than in NE plants, and higher rates were also observed in IE than in NE plants recovering from drought. Isoprene emission was stimulated by mild drought. Under severe drought, isoprene emission declined, and levels of non-volatile isoprenoids, specifically de-epoxidated xanthophylls and abscisic acid (ABA), were higher in IE than in NE plants. Soluble sugars and phenylpropanoids were also higher in IE plants. After re-watering, IE plants maintained higher levels of metabolites, but isoprene emission was again higher than in unstressed plants. We suggest that isoprene production in transgenic tobacco triggered different responses, depending upon drought severity. Under drought, the observed trade-off between isoprene and non-volatile isoprenoids suggests that in IE plants isoprene acts as a short-term protectant, whereas non-volatile isoprenoids protect against severe, long-term damage. After drought, it is suggested that the capacity to emit isoprene might up-regulate production of non-volatile isoprenoids and phenylpropanoids, which may further protect IE leaves.
机译:异戊二烯增强类囊体膜并清除应力诱导的氧化物质。测试了在压力条件下异戊二烯生产也可能影响类异戊二烯和苯丙烷途径的想法。我们使用转基因烟草比较暴露于严重干旱和随后再浇水的异戊二烯(IE)和非排放(NE)植物的生理和生化特性。 IE中的光合作用受干旱的影响要小于NE植物,而IE中的光合作用的速率也高于从干旱中恢复的NE植物。轻度干旱刺激了异戊二烯的排放。在严重干旱下,IE中的异戊二烯排放减少,IE中的非挥发性类异戊二烯水平,特别是脱环叶黄素和脱落酸(ABA)的水平高于NE植物。 IE植物中的可溶性糖和苯丙烷也较高。再浇水后,IE植物的代谢物含量更高,但异戊二烯的排放量再次高于未受胁迫的植物。我们建议转基因烟草中的异戊二烯生产会引发不同的反应,具体取决于干旱的严重程度。在干旱下,观察到的异戊二烯与非挥发性类异戊二烯之间的折衷表明,在IE植物中,异戊二烯可作为短期保护剂,而非挥发性异戊二烯可防止严重的长期破坏。干旱后,建议释放异戊二烯的能力可能会上调非挥发性类异戊二烯和苯基丙烷的生成,从而可能进一步保护IE叶片。

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