CSIRO Agriculture and Food, Private Bag 5, P.O., Wembley, WA, 6913, Australia.
Faculty of Veterinary and Agricultural Sciences, University of Melbourne, Creswick, VIC, 3363, Australia.
Physiol Plant. 2018 Aug;163(4):516-529. doi: 10.1111/ppl.12676. Epub 2018 Apr 30.
The impact of elevated [CO ] (e[CO ]) on crops often includes a decrease in their nutrient concentrations where reduced transpiration-driven mass flow of nutrients has been suggested to play a role. We used two independent approaches, a free-air CO enrichment (FACE) experiment in the South Eastern wheat belt of Australia and a simulation study employing the agricultural production systems simulator (APSIM), to show that transpiration (mm) and nutrient uptake (g m ) of nitrogen (N), potassium (K), sulfur (S), calcium (Ca), magnesium (Mg) and manganese (Mn) in wheat are correlated under e[CO ], but that nutrient uptake per unit water transpired is higher under e[CO ] than under ambient [CO ] (a[CO ]). This result suggests that transpiration-driven mass flow of nutrients contributes to decreases in nutrient concentrations under e[CO ], but cannot solely explain the overall decline.
升高的 [CO ](e[CO ])对作物的影响通常包括其养分浓度的降低,其中已有人提出减少蒸腾驱动的养分质量流起了一定的作用。我们使用了两种独立的方法,即澳大利亚东南部小麦带的自由空气 CO 富集(FACE)实验和农业生产系统模拟器(APSIM)的模拟研究,结果表明在 e[CO ]条件下,小麦的蒸腾作用(mm)和氮(N)、钾(K)、硫(S)、钙(Ca)、镁(Mg)和锰(Mn)的养分吸收(g·m )之间存在相关性,但 e[CO ]条件下每蒸腾单位水量的养分吸收量高于 a[CO ](ambient [CO ])条件。这一结果表明,蒸腾驱动的养分质量流导致了 e[CO ]条件下养分浓度的降低,但不能完全解释整体的下降。