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Uptake and Assimilation of NO3− and NH4+ by Nitrogen-Deficient Perennial Ryegrass Turf

机译:缺氮多年生黑麦草皮对NO3-和NH4 +的吸收和吸收

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摘要

Assimilation of NO3 and NH4+ by perennial ryegrass (Lolium perenne L.) turf, previously deprived of N for 7 days, was examined. Nitrogen uptake rate was increased up to four- to five-fold for both forms of N by N-deprivation as compared to N-sufficient controls, with the deficiency-enhanced N absorption persisting through a 48 hour uptake period. Nitrate, but not NH4+, accumulated in the roots and to a lesser degree in shoots. By 48 hours, 53% of the absorbed NO3 had been reduced, whereas 97% of the NH4+ had been assimilated. During the early stages (0 to 8 hours) of NO3 uptake by N-deficient turf, reduction occurred primarily in the roots. Between 8 and 16 hours, however, the site of reduction shifted to the shoots. Nitrogen form did not affect partitioning of the absorbed N between roots (40%) and shoots (60%) but did affect growth. Compared to NO3, NH4+ uptake inhibited root, but not shoot, growth. Total soluble carbohydrates decreased in both roots and shoots during the uptake period, principally the result of fructan metabolism. Ammonium uptake resulted in greater total depletion of soluble carbohydrates in the root compared to NO3 uptake. The data indicate that N assimilation by ryegrass turf utilizes stored sugars but is also dependent on current photosynthate.
机译:研究了多年生黑麦草(Lolium perenne L.)草皮对NO3 -和NH4 + 的吸收作用,该草皮先前被剥夺了7天的氮。与氮充足的对照相比,两种氮素通过氮剥夺将氮吸收速率提高至四到五倍,而氮不足的吸收则持续了48小时。硝酸盐而不是NH4 + 累积在根中,而在芽中则较少。到48小时,已吸收的NO3 -减少了53%,而NH4 + 则被吸收了97%。在缺氮的草皮吸收NO3 -的早期阶段(0至8小时),还原主要发生在根部。但是,在8到16小时之间,还原点转移到了芽上。氮素形态不影响根系(40%)和枝条(60%)之间吸收氮的分配,但确实影响生长。与NO3 -相比,NH4 + 的吸收抑制了根的生长,但不抑制芽的生长。在吸收期间,总的可溶性碳水化合物在根和芽中均减少,这主要是果聚糖代谢的结果。与NO3 -的吸收相比,铵的吸收导致根部可溶性碳水化合物的总消耗量更大。数据表明黑麦草草皮对氮的吸收利用了存储的糖,但也依赖于当前的光合产物。

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