N uptake and distribution in crops: an agronomical and ecophysiological perspective
Поглощение и распределение азота у сельскохозяйственных культур: агрономический и экологo-физиологический аспект
2002-04-15
SCID: 54.1/zuyexezb
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carbon assimilationcritical nitrogen concentrationcrop nitrogen statusnitrogen allocationnitrogen uptake
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Abstract (AI)
The rate of N uptake of crops is highly variable during crop development and between years and sites. However, under ample soil N availability, crop N accumulation is highly related to crop growth rate and to biomass accumulation. Critical N concentration has been defined as the minimum N concentration which allows maximum growth rate. Critical N concentration declines during crop growth. The relationship between critical N concentration and biomass accumulation over the growth period of a crop is broadly similar within major C(3) and C(4) cultivated species. Therefore, the critical N concentration concept is widely used in agronomy as the basis of the diagnosis of crop N status, and allows discrimination between situations of sub-optimal and supra-optimal N supply. The relationship between N and biomass accumulation in crops, relies on the interregulation of multiple crop physiological processes. Among these processes, N uptake, crop C assimilation and thus growth rate, and C and N allocation between organs and between plants, play a particular role. Under sub-optimal N supply, N uptake of the crop depends on soil mineral N availability and distribution, and on root distribution. Under ample N supply, N uptake largely depends on growth rate via internal plant regulation. Carbon assimilation of the crop is related to crop N through the distribution of N between mature leaves with consequences for leaf and canopy photosynthesis. However, although less commonly emphasized, carbon assimilation of the crop also depends on crop N through leaf area development. Therefore, crop growth rate fundamentally relies on the balance of N allocation between growing and mature leaves. Nitrogen uptake and distribution also depends on C allocation between organs and N composition of these organs. Within shoots, allocation of C to stems generally increases in relation to C allocation to the leaves over the crop growth period. Allocation of C and N between shoots and roots also changes to a large extent in relation to soil N and/or crop N. These alterations in C and N allocation between plant organs have implications, together with soil availability and carbon assimilation, on N uptake and distribution in crops. Therefore, N uptake and distribution in plants and crops involves many aspects of growth and development. Regulation of nitrogen assimilation needs to be considered in the context of these interregulatory processes.
Key Findings
1
Critical nitrogen concentration is the minimum concentration supporting maximum growth, declines during crop development, and follows broadly similar biomass relationships across major cultivated C3 and C4 species.
2
Crop growth depends on coordinated nitrogen allocation between growing and mature leaves, influencing both leaf and canopy photosynthesis and leaf-area development, while carbon allocation among organs also regulates nitrogen uptake and distribution.
3
The critical nitrogen concentration framework diagnoses crop nitrogen status and distinguishes sub-optimal from supra-optimal nitrogen supply.
4
Under ample soil nitrogen, crop nitrogen accumulation is closely linked to crop growth rate and biomass accumulation, despite uptake variability across development, years, and sites.
5
Under sub-optimal nitrogen, crop uptake depends mainly on soil mineral nitrogen availability and distribution and on root distribution; under ample nitrogen, uptake is regulated largely by crop growth rate.
Research Object
N uptake and distribution in cultivated crops during crop development
Research Subject
The relationships and physiological mechanisms linking crop nitrogen uptake, critical nitrogen concentration, biomass accumulation, growth, carbon assimilation, and carbon/nitrogen allocation under varying soil nitrogen supply
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2002-04-15
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