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Nitrate Effect on Rice Growth and Nitrogen Absorption and Assimilation at Different Growth Stages

机译:硝酸盐对水稻不同生育期生长及氮吸收吸收的影响

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The effect of nitrate (NO_3~-) on rice (Oryza sativa L.) growth as well as N absorption and assimilation during different growth stages was examined using three typical rice cultivars. Dry weight, yield, N uptake, nitrate reductase activity (NRA) in leaves, and glutamine synthetase activity (GSA) in roots and leaves during their entire growth periods, as well as the kinetic parameters of ammonium (NH_4~+) uptake at the seedling stage, were measured with solution culture experiments. Results indicated that addition of NH_4~+-N and NO_3~--N at a ratio of 75:25 (NH_4~++NO_3~- treatment) when compared with that of NH_4~+-N alone (NH_4~+ treatment) increased the dry weight of 'Nanguang' cultivar by 30% and 'Yunjing 38' cultivar by 31%, and also increased their grain yield by 21% and 17%, respectively. For the four growth stages, the total N accumulation in plants increased by an average of 36% for 'Nanguang' and 31% for 'Yunjing 38', whereas the increasing effect of NO_3~- in the '4007' cultivar was only found at the seedling stage. In the NH_4~++NO_3~-treatment compared to the NH_4~+ treatment, NRA in the leaves increased by 2.09 folds, and GSA increased by 92% in the roots and 52% in the leaves of the three cultivars. NO_3~- supply increased the maximum uptake rate (V_(max)) in the 'Nanguang' and 'Yunjing 38' cultivars, reflecting that the NO_3~- itself, not the increasing N concentration, increased the uptake rate of NH_4~+ by rice. There was no effect on the apparent Michaelis-Menten constant (K_m) of the three cultivars. Thus, some replacement of NH_4~+ with NO_3~- could greatly improve the growth of rice plants, mainly on account of the increased uptake of NH_4~+ promoted by NO_3~-, and future studies should focus on the molecular mechanism of the increased uptake of NH_4~+ by NO_3~-.
机译:利用三种典型的水稻品种,研究了硝酸盐(NO_3〜-)对水稻(Oryza sativa L.)生长以及不同生育阶段氮素吸收和同化的影响。整个生长期的叶片干重,产量,氮吸收量,叶片中硝酸盐还原酶活性(NRA)以及根和叶片中谷氨酰胺合成酶活性(GSA)以及铵态氮(NH_4〜+)吸收的动力学参数。用溶液培养实验测量幼苗阶段。结果表明,与单独使用NH_4〜+ -N(NH_4〜+)相比,以75:25的比例添加NH_4〜+ -N和NO_3〜--N(NH_4〜++ NO_3〜-)。使“南光”品种的干重增加了30%,使“云粳38”品种的干重增加了31%,谷物产量分别增加了21%和17%。在四个生长阶段,“南光”植物中的总氮积累平均增加了36%,而“云粳38”则增加了31%,而“ 4007”品种中NO_3〜-的增加作用仅在苗期。与NH_4〜+处理相比,在NH_4〜++ NO_3〜处理中,三个品种叶片的NRA增加2.09倍,根部的GSA增加92%,在叶片中增加52%。 NO_3〜-的供应增加了'南光'和'云粳38'品种的最大吸收速率(V_(max)),反映出NO_3〜-本身而不是增加的N浓度增加了NH_4〜+的吸收速率。白饭。对这三个品种的表观米氏(Michaelis-Menten)常数(K_m)没有影响。因此,用NO_3〜-代替NH_4〜+可以大大改善水稻的生长,这主要是由于NO_3〜-促进了NH_4〜+的吸收,未来的研究应着眼于提高NH_4〜+的分子机制。 NO_3〜-吸收NH_4〜+。

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