School of Biological Sciences, University of Canterbury, Private Bag 4800, Christchurch, New Zealand.
School of Life Sciences, Yantai University, Yantai 264005, China.
J Exp Bot. 2017 Mar 1;68(7):1569-1583. doi: 10.1093/jxb/erx056.
The mechanisms linking C/N balance to N uptake and assimilation are central to plant responses to changing soil nutrient levels. Defoliation and subsequent regrowth of grasses both impact C partitioning, thereby creating a significant point of interaction with soil N availability. Using defoliation as an experimental treatment, we investigated the dynamic relationships between plant carbohydrate status and NO3--responsive uptake systems, transporter gene expression, and nitrate assimilation in Lolium perenne L. High- and low-affinity NO3- uptake was reduced in an N-dependent manner in response to a rapid and large shift in carbohydrate remobilization triggered by defoliation. This reduction in NO3- uptake was rescued by an exogenous glucose supplement, confirming the carbohydrate dependence of NO3- uptake. The regulation of NO3- uptake in response to the perturbation of the plant C/N ratio was associated with changes in expression of putative high- and low-affinity NO3- transporters. Furthermore, NO3- assimilation appears to be regulated by the C-N status of the plant, implying a mechanism that signals the availability of C metabolites for NO3- uptake and assimilation at the whole-plant level. We also show that cytokinins may be involved in the regulation of N acquisition and assimilation in response to the changing plant C/N ratio.
将 C/N 平衡与氮吸收和同化联系起来的机制是植物对土壤养分变化做出响应的核心。刈割和随后的草类再生都会影响碳分配,从而与土壤氮供应产生显著的相互作用点。本研究通过刈割作为实验处理,研究了植物碳水化合物状态与硝酸盐响应吸收系统、转运体基因表达以及 Lolium perenne L 中硝酸盐同化之间的动态关系。高亲和低亲和硝酸盐吸收均以依赖氮的方式减少,这是由于刈割触发的碳水化合物再动员的快速和大量变化所致。外源葡萄糖补充剂可挽救硝酸盐吸收的减少,证实了硝酸盐吸收对碳水化合物的依赖性。对植物 C/N 比的干扰做出响应的硝酸盐吸收的调节与高亲和低亲和硝酸盐转运体的表达变化有关。此外,硝酸盐同化似乎受到植物 C-N 状态的调节,这意味着存在一种在整个植物水平上为硝酸盐吸收和同化信号传递 C 代谢物可用性的机制。我们还表明,细胞分裂素可能参与了对不断变化的植物 C/N 比的氮获取和同化的调节。