首页> 美国卫生研究院文献>Plant Physiology >Abscisic Acid Accumulation by Roots of Xanthium strumarium L. and Lycopersicon esculentum Mill. in Relation to Water Stress
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Abscisic Acid Accumulation by Roots of Xanthium strumarium L. and Lycopersicon esculentum Mill. in Relation to Water Stress

机译:Xanthium strumarium L.和番茄番茄的根的脱落酸积累。与水分胁迫有关

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摘要

Plants of Xanthium strumarium L. and Lycopersicon esculentum Mill. cv `Rheinlands Ruhm' were grown in solution culture, and control and steam-girdled intact plants were stressed. Detached roots of both species were stressed to different extents in two ways: (a) either in warm air or, (b) in the osmoticum Aquacide III. The roots of both species produced and accumulated progressively more abscisic acid (ABA), the greater the stress inflicted by either method. ABA-glucose ester levels in Xanthium roots were not affected by water stress and were too low to be the source of the stress-induced ABA. The fact that ABA accumulated in detached roots and in roots of girdled plants proves that ABA was synthesized in the roots and not merely transported from the shoots.Maximum ABA accumulation in detached roots occurred after 60 to 70% loss of fresh weight. In Xanthium roots, ABA levels continued to increase for at least 11 hours, and no catabolism was apparent when stressed roots were immersed in water, although the roots did stop accumulating ABA. When osmotically stressed, Xanthium roots reached a maximum ABA level after 2 hours, but ABA continued to rise in the medium.Under optimal stress conditions, endogenous ABA levels increased 100 times over their prestress values in detached roots of Xanthium, and 15 times in Lycopersicon under nonoptimal stress, when endogenous ABA was expressed as concentrations based on tissue water content. These are much greater relative increases than observed in the leaves (15 times in Xanthium, 3 times in Lycopersicon), although the roots contain substantially less ABA than the leaves in all circumstances. The results suggest that the endogenous level of ABA in roots could rise appreciably prior to leaf wilt, and could modify the plant's water economy before the leaves become stressed.
机译:Xanthium strumarium L.和Lycopersicon esculentum Mill的植物。莱茵兰Ruhm简历在溶液培养中生长,强调了对照和经过蒸汽处理的完整植物。两种物种的分离根都以两种方式受到不同程度的压力:(a)在温暖的空气中,或(b)在渗透剂Aquacide III中。两种物种的根都产生并逐渐积累更多的脱落酸(ABA),这两种方法所施加的压力越大。 Xanthium根中的ABA葡萄糖酯水平不受水分胁迫的影响,并且过低而不能成为胁迫诱导的ABA的来源。脱落酸根系和环带植物根系中均积累有ABA的事实证明,ABA是在根系中合成的,而不仅是从枝条中转运出来的,脱落的根系中最大的ABA积累发生在鲜重减少60%至70%之后。在Xanthium根中,ABA的水平持续至少持续11个小时,并且当应力根浸入水中时,即使根部确实停止了ABA的积累,也没有分解代谢的迹象。渗透胁迫下,黄药根在2小时后达到最高ABA水平,但培养基中ABA继续升高。在最佳胁迫条件下,黄原根的内源ABA水平比其预应力值增加100倍,而番茄在根系中则增加15倍在非最佳胁迫下,当内源性ABA表示为基于组织含水量的浓度时。尽管在任何情况下,根部的ABA含量都比叶片少得多,但相对增加量要比在叶片中观察到的大得多(在Xanthium中是15倍,在番茄中是3倍)。结果表明,根部ABA的内源性水平在叶萎之前可能会明显升高,并可能在叶片受到压力之前改变植物的水分经济。

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