IC4R018-RNA-Seq-2015-25447912

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Project Title

  • RNA-Seq analysis of differentially expressed genes in rice under varied nitrogen supplies


The Background of This Project

  • Ammonium (NH4 +) and nitrate (NO3 −) are the two main forms of inorganic nitrogen (N) available for plant growth (Chen et al., 1998). In general, ammonium is the preferred nitrogen source for many plant species over nitrate because of its lower energy demand for metabolism.It's reported that ammonium ion is not only the primary nitrogen nutrient for rice growth and development in paddies of tropical Asia(Yu, 1985) but also the chief limiting factor for rice production.
  • The Oryza sativa ammonium transporter,OsAMT1;1, more constitutive expression in shoots and roots, was a prominent member of the OsAMT1 gene family that involved in NH4 + transport in rice plants (Sonoda et al., 2003a). Meanwhile, NH4 + uptake had been reported to be subjected to negative feedback, supposedly from nitrogen metabolites (Lee and Rudge, 1986; Morgan and Jackson,1988; Sonoda et al., 2003b); the early intermediates of nitrogen metabolism such as glutamine might control the expression of ammonium transporter genes in rice and serve as indicators of both the environmental and the cytosolic nitrogen status in rice.
  • With the rapid development of bioengineering and molecular biological technologies, transgenic approaches have broadly been applied to enhance nitrogen uptake and assimilation in rice by the overexpression of novel transgenes. Gene expression, the NH4 + permeability as well as the uptake rate in overexpressed OsAMT1;1 lines were much higher than wild type (WT), meanwhile, higher NH4 + contents also promoted higher expression levels of genes in the nitrogen assimilation pathway, resulting in greater nitrogen assimilates, chlorophyll, starch, sugars, and grain yield in transgenic lines than in the WT under both suboptimal and optimal nitrogen conditions, these results implicated that OsAMT1;1 had the potential to improve nitrogen use efficiency and grain yield in rice (Ranathunge et al., 2014).
  • Following the discovery of the major role of the enzyme couple glutamine synthetase (GS) and glutamate synthase (GOGAT) in ammonium assimilation in higher plants (Good et al., 2004; Miflin and Lea, 1976),several laboratories had focused on understanding the mechanisms controlling the regulation of this pathway in plants including rice (Cai et al.,2009; Harrison et al., 2000; Kusano et al., 2011).

Plant Culture & Treatment

  • Rice seeds (O. sativa ssp. Japonica ‘Nipponbare’) were surfacesterilized with 2.5% NaClO for 30 min, rinsed thoroughly with distilled water, then soaked for 24 h in distilled water at 37 °C in the dark.Seeds were then transferred to a plastic mesh placed over the surface of distilled water (in a container of ca. 8 L capacity) and allowed to germinate for 6 days before providing light at 27 °C. Uniform seedlings were selected in batches of three and then transferred to a tank containing 8 L of IRRI nutrient solution (1.25 mM NH4NO3, 0.3 mM KH2PO4,0.35 mM K2SO4, 1 mM CaCl2·2 H2O, 1 mM MgSO4·7 H2O, 0.5 mM Na2SiO3, 20 μM NaFeEDTA, 20 μM H3BO3, 9 μM MnCl2·4 H2O, 0.32 μM CuSO4·5 H2O, 0.77 μM ZnSO4·7 H2O and 0.39 μM Na2MoO4·2 H2O, pH5.8). The outer walls and the bottom of the containers were painted black to prevent light from entering inside the tanks (to prevent algal growth). Plants were grown in a greenhouse at 27 °C/25 °C (day/night) for 10 days with a 16 h light/8 h dark regime (light intensity was 400 μmol m−2 s−1, the relative humidity was kept at 70%). The solution was exchanged every 2 days.
  • Total RNA of each sample was isolated using the TRIzol total RNA extraction kit (Invitrogen, Carlsbad, CA, USA) according to the manufacturer's instructions. RNA quality was characterized on an agarose gel electrophoresis and spectrophotometry. High quality RNA with 28S:18S more than 1.5 and absorbance 260/280 ratios between 1.8 and 2.2 was used for library construction and sequencing.
  • The raw reads were filtered before data analysis, the adaptor contamination was removed, the reads were screened from the 39 to 59to trim the bases with a quality score of Q b 20 using 5 bp windows and the reads with final length less than 25 bp were removed using the cutadapt software and fastQC method. The remaining (clean) reads were mapped to the reference genome of Japonica variety Nipponbare (ftp://ftp.ensemblgenomes.org/pub/release-21/plants/fasta/oryza_sativa/dna/)using bowtie2 and tophat2 software(Trapnell et al., 2009). During mapping, mismatches of no more than two bases were allowed in the alignment. Gene structure information was obtained from Ensembl (http://www.ensembl.org/index.html) annotation. We used the RPKM (reads per kilo bases per million reads) method to calculate unique gene expression levels according to the equation: RPKM = total exonreads / mapped reads (millions) × exon length (kb). For functional annotation, the expressed genes were selected and compared against the reference genes from the Ensembl database (http://www.ensembl.org/index.html). Gene Ontology (GO) annotation analysis was performed using Blast2GO software (http://www.blast2go.org/), an automated tool for the assignment of GO terms. The annotation result was categorized with

respect to biological process, molecular function, and cellular component.In order to gain an overview of gene pathway networks, KEGG analysis was performed using the online KEGG Automatic Annotation Server(KAAS) (http://www.genome.jp/tools/kaas/). EggNOG (evolutionary genealogy of genes: non-supervised orthologous groups) functional category analysis was carried out by online protein database (http://eggnog.embl.de/version_4.0.beta/).

Research Findings

Labs working on this Project

  • State Key Laboratory of Soil and Sustainable Agriculture, Institute of Soil Science, Chinese Academy of Sciences, Nanjing 210008, China
  • University of Chinese Academy of Sciences, Beijing 100049, China
  • Institute of Horticulture, Jiangsu Academy of Agricultural Sciences, Nanjing 210008, China


Corresponding Author

  • Shun-ying Yang: yhsu@issas.ac.cn