The Arabidopsis Root Transcriptome by Serial Analysis of Gene Expression. Gene Identification Using the Genome Sequence
Open Access
- 1 January 2004
- journal article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 134 (1) , 67-80
- https://doi.org/10.1104/pp.103.030536
Abstract
Large-scale identification of genes expressed in roots of the model plant Arabidopsis was performed by serial analysis of gene expression (SAGE), on a total of 144,083 sequenced tags, representing at least 15,964 different mRNAs. For tag to gene assignment, we developed a computational approach based on 26,620 genes annotated from the complete sequence of the genome. The procedure selected warrants the identification of the genes corresponding to the majority of the tags found experimentally, with a high level of reliability, and provides a reference database for SAGE studies in Arabidopsis. This new resource allowed us to characterize the expression of more than 3,000 genes, for which there is no expressed sequence tag (EST) or cDNA in the databases. Moreover, 85% of the tags were specific for one gene. To illustrate this advantage of SAGE for functional genomics, we show that our data allow an unambiguous analysis of most of the individual genes belonging to 12 different ion transporter multigene families. These results indicate that, compared with EST-based tag to gene assignment, the use of the annotated genome sequence greatly improves gene identification in SAGE studies. However, more than 6,000 different tags remained with no gene match, suggesting that a significant proportion of transcripts present in the roots originate from yet unknown or wrongly annotated genes. The root transcriptome characterized in this study markedly differs from those obtained in other organs, and provides a unique resource for investigating the functional specificities of the root system. As an example of the use of SAGE for transcript profiling in Arabidopsis, we report here the identification of 270 genes differentially expressed between roots of plants grown either with NO3- or NH4NO3 as N source.Keywords
This publication has 50 references indexed in Scilit:
- Use of Serial Analysis of Gene Expression Technology to Reveal Changes in Gene Expression in Arabidopsis Pollen Undergoing Cold StressPlant Physiology, 2003
- Molecular Mechanisms and Regulation of K+ Transport in Higher PlantsAnnual Review of Plant Biology, 2003
- Refined Annotation of the Arabidopsis Genome by Complete Expressed Sequence Tag MappingPlant Physiology, 2003
- Assessment of SAGE in Transcript IdentificationGenome Research, 2003
- Response: The new role of SAGE in gene discoveryTrends in Biotechnology, 2003
- Correct Identification of Genes from Serial Analysis of Gene Expression Tag SequencesGenomics, 2002
- Major Alterations of the Regulation of Root NO3 − Uptake Are Associated with the Mutation of Nrt2.1 and Nrt2.2 Genes in ArabidopsisPlant Physiology, 2001
- Changes in Gene Expression Associated with Developmental Arrest and Longevity in Caenorhabditis elegansGenome Research, 2001
- Nitrate regulation of metabolism and growthCurrent Opinion in Plant Biology, 1999
- Serial Analysis of Gene ExpressionScience, 1995