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Abscisic acid ethylene and gibberellic acid act at different developmental stages to instruct the adaptation of young leaves to stress

机译:脱落酸乙烯和赤霉素在不同的发育阶段起作用指示幼叶适应胁迫

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摘要

Drought stress represents a particularly great environmental challenge for plants. A decreased water availability can severely limit growth, and this jeopardizes the organism's primary goal—to survive and sustain growth long enough to ensure the plentiful production of viable seeds within the favorable growth season. It is therefore vital for a growing plant to sense oncoming drought as early as possible, and to respond to it rapidly and appropriately in all organs. A typical, fast energy-saving response is the arrest of growth in young organs, which is likely mediated by root-derived signals. A recent publication indicates that three plant hormones (abscisic acid, ethylene and gibberellic acid) mediate the adaptation of leaf growth in response to drought, and that they act at different developmental stages. Abscisic acid mainly acts in mature cells, while ethylene and gibberellic acid function in expanding and dividing leaf cells. This provides the plant with a means to differentially control the developmental zones of a growing leaf, and to integrate environmental signals differently in sink and source tissues. Here we discuss the biological implications of this discovery in the context of long-distance xylem and phloem transport.
机译:干旱胁迫对植物而言是特别巨大的环境挑战。可用水量减少会严重限制生长,这危及了有机体的主要目标-生存和维持足够长的生长时间,以确保在有利的生长季节内大量繁殖有生命的种子。因此,对于生长中的植物而言,尽早感觉到即将来临的干旱,并在所有器官中迅速适当地应对干旱至关重要。一个典型的快速节能响应是阻止年轻器官的生长,这很可能是由根源信号介导的。最近的出版物表明,三种植物激素(脱落酸,乙烯和赤霉素)介导叶片生长适应干旱,并且它们在不同的发育阶段起作用。脱落酸主要作用于成熟细胞,而乙烯和赤霉素则作用于扩大和分裂的叶细胞。这为植物提供了一种差异控制生长叶片的区域,并将环境信号以不同方式整合到汇源组织中的手段。在这里,我们讨论了在长距离木质部和韧皮部运输的背景下该发现的生物学意义。

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