RESUMO
Nitrogen is an essential macronutrient for plants and regulates many aspects of plant growth and development. Nitrate is one of the major forms of nitrogen in plants. However, the role of nitrate uptake and allocation in seed development is not fully understood. Here, we identified the maize (Zea mays) small-kernel mutant zmnpf7.9 and characterized the candidate gene, ZmNPF7.9, which was the same gene as nitrate transport 1.5 (NRT1.5) in maize. This gene is specifically expressed in the basal endosperm transfer layer cells of maize endosperm. Dysfunction of ZmNPF7.9 resulted in delayed endosperm development, abnormal starch deposition and decreased hundred-grain weight. Functional analysis of cRNA-injected Xenopus oocytes showed that ZmNPF7.9 is a low-affinity, pH-dependent bidirectional nitrate transporter. Moreover, the amount of nitrate in mature seeds of the zmnpf7.9 mutant was reduced. These suggest that ZmNPF7.9 is involved in delivering nitrate from maternal tissues to the developing endosperm. Moreover, most of the key genes associated with glycolysis/gluconeogenesis, carbon fixation, carbon metabolism and biosynthesis of amino acids pathways in the zmnpf7.9 mutant were significantly down-regulated. Thus, our results demonstrate that ZmNPF7.9 plays a specific role in seed development and grain weight by regulating nutrition transport and metabolism, which might provide useful information for maize genetic improvement.
Assuntos
Proteínas de Transporte de Ânions/genética , Proteínas de Plantas/genética , Sementes/crescimento & desenvolvimento , Zea mays/crescimento & desenvolvimento , Zea mays/genética , Proteínas de Transporte de Ânions/metabolismo , Endosperma/crescimento & desenvolvimento , Transportadores de Nitrato , Proteínas de Plantas/metabolismo , Amido/metabolismo , Zea mays/metabolismoRESUMO
In halophytic plants, the high-affinity potassium transporter HKT gene family can selectively uptake K⺠in the presence of toxic concentrations of Naâº. This has so far not been well examined in glycophytic crops. Here, we report the characterization of SbHKT1;4, a member of the HKT gene family from Sorghum bicolor. Upon Na⺠stress, SbHKT1;4 expression was more strongly upregulated in salt-tolerant sorghum accession, correlating with a better balanced Na⺠/K⺠ratio and enhanced plant growth. Heterogeneous expression analyses in mutants of Saccharomyces cerevisiae and Arabidopsis thaliana indicated that overexpressing SbHKT1;4 resulted in hypersensitivity to Na⺠stress, and such hypersensitivity could be alleviated with the supply of elevated levels of Kâº, implicating that SbHKT1;4 may mediate K⺠uptake in the presence of excessive Naâº. Further electrophysiological evidence demonstrated that SbHKT1;4 could transport Na⺠and K⺠when expressed in Xenopus laevis oocytes. The relevance of the finding that SbHKT1;4 functions to maintain optimal Na⺠/K⺠balance under Na⺠stress to the breeding of salt-tolerant glycophytic crops is discussed.