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首页> 外文期刊>Plant, Cell & Environment >Arbuscular mycorrhizal symbiosis induces strigolactone biosynthesis under drought and improves drought tolerance in lettuce and tomato
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Arbuscular mycorrhizal symbiosis induces strigolactone biosynthesis under drought and improves drought tolerance in lettuce and tomato

机译:丛枝菌根共生诱导干旱条件下松香内酯的生物合成,提高生菜和番茄的耐旱性

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摘要

Arbuscular mycorrhizal (AM) symbiosis alleviates drought stress in plants. However, the intimate mechanisms involved, as well as its effect on the production of signalling molecules associated with the host plant-AM fungus interaction remains largely unknown. In the present work, the effects of drought on lettuce and tomato plant performance and hormone levels were investigated in non-AM and AM plants. Three different water regimes were applied, and their effects were analysed over time. AM plants showed an improved growth rate and efficiency of photosystem II than non-AM plants under drought from very early stages of plant colonization. The levels of the phytohormone abscisic acid, as well as the expression of the corresponding marker genes, were influenced by drought stress in non-AM and AM plants. The levels of strigolactones and the expression of corresponding marker genes were affected by both AM symbiosis and drought. The results suggest that AM symbiosis alleviates drought stress by altering the hormonal profiles and affecting plant physiology in the host plant. In addition, a correlation between AM root colonization, strigolactone levels and drought severity is shown, suggesting that under these unfavourable conditions, plants might increase strigolactone production in order to promote symbiosis establishment to cope with the stress.
机译:丛枝菌根(AM)共生减轻了植物的干旱胁迫。但是,所涉及的紧密机制及其对与宿主植物-AM真菌相互作用相关的信号分子产生的影响仍然未知。在目前的工作中,在非AM和AM植物中研究了干旱对生菜和番茄植株性能和激素水平的影响。应用了三种不同的水方案,并随时间分析了它们的影响。在植物定殖的非常早期阶段,干旱导致AM植物比非AM植物具有更高的生长速率和光系统II效率。非AM和AM植物中干旱胁迫影响植物激素脱落酸的水平以及相应标记基因的表达。 AM共生和干旱均会影响strigolactones的水平和相应标记基因的表达。结果表明,AM共生通过改变激素分布并影响寄主植物的植物生理来减轻干旱胁迫。此外,还显示了AM根定植,松果内酯水平和干旱严重程度之间的相关性,这表明在这些不利条件下,植物可能会增加松果内酯的产量以促进共生建立以应对压力。

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