Spatio-temporal dynamics in global rice gene expression (Oryza sativa L.) in response to high ammonium stress

J Plant Physiol. 2017 May:212:94-104. doi: 10.1016/j.jplph.2017.02.006. Epub 2017 Feb 22.

Abstract

Ammonium (NH4+) is the predominant nitrogen (N) source in many natural and agricultural ecosystems, including flooded rice fields. While rice is known as an NH4+-tolerant species, it nevertheless suffers NH4+ toxicity at elevated soil concentrations. NH4+ excess rapidly leads to the disturbance of various physiological processes that ultimately inhibit shoot and root growth. However, the global transcriptomic response to NH4+ stress in rice has not been examined. In this study, we mapped the spatio-temporal specificity of gene expression profiles in rice under excess NH4+ and the changes in gene expression in root and shoot at various time points by RNA-Seq (Quantification) using Illumina HiSeqTM 2000. By comparative analysis, 307 and 675 genes were found to be up-regulated after 4h and 12h of NH4+ exposure in the root, respectively. In the shoot, 167 genes were up-regulated at 4h, compared with 320 at 12h. According to KEGG analysis, up-regulated DEGs mainly participate in phenylpropanoid (such as flavonoid) and amino acid (such as proline, cysteine, and methionine) metabolism, which is believed to improve NH4+ stress tolerance through adjustment of energy metabolism in the shoot, while defense and signaling pathways, guiding whole-plant acclimation, play the leading role in the root. We furthermore critically assessed the roles of key phytohormones, and found abscisic acid (ABA) and ethylene (ET) to be the major regulatory molecules responding to excess NH4+ and activating the MAPK (mitogen-activated protein kinase) signal-transduction pathway. Moreover, we found up-regulated hormone-associated genes are involved in regulating flavonoid biosynthesis and are regulated by tissue flavonoid accumulation.

Keywords: Ammonium (NH(4)(+)) toxicity; RNA-Seq (Quantification) profiling; Rice (Oryza sativa L.); Spatial-temporal specificity.

MeSH terms

  • Abscisic Acid / metabolism
  • Acclimatization
  • Amino Acids / genetics
  • Amino Acids / metabolism
  • Ammonium Compounds / toxicity*
  • Ethylenes / metabolism
  • Flavonoids / genetics
  • Flavonoids / metabolism
  • Gene Expression Profiling
  • Gene Expression Regulation, Plant / drug effects*
  • Gene Ontology
  • Genes, Plant / drug effects
  • Mitogen-Activated Protein Kinases / metabolism
  • Nitrogen / metabolism
  • Oryza / drug effects*
  • Oryza / genetics*
  • Phenotype
  • Plant Growth Regulators / metabolism
  • Plant Proteins / genetics
  • Plant Roots / genetics
  • Plant Roots / growth & development
  • Plant Roots / metabolism
  • Plant Shoots / genetics
  • Plant Shoots / growth & development
  • Plant Shoots / metabolism
  • RNA, Plant / genetics
  • Sequence Analysis, RNA
  • Signal Transduction / drug effects
  • Stress, Physiological*
  • Time Factors
  • Transcriptome / drug effects*
  • Up-Regulation

Substances

  • Amino Acids
  • Ammonium Compounds
  • Ethylenes
  • Flavonoids
  • Plant Growth Regulators
  • Plant Proteins
  • RNA, Plant
  • Abscisic Acid
  • ethylene
  • Mitogen-Activated Protein Kinases
  • Nitrogen