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PMID: 15299128 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Utility of different gene enrichment approaches toward identifying and sequencing the maize gene space.

Plant physiology ·Vol. 136 ·No. 2 ·2004-10-00 ·Pages 3023-33

Springer NM, Xu X, Barbazuk WB

Abstract

Maize (Zea mays) possesses a large, highly repetitive genome, and subsequently a number of reduced-representation sequencing approaches have been used to try and enrich for gene space while eluding difficulties associated with repetitive DNA. This article documents the ability of publicly available maize expressed sequence tag and Genome Survey Sequences (GSSs; many of which were isolated through the use of reduced representation techniques) to recognize and provide coverage of 78 maize full-length cDNAs (FLCs). All 78 FLCs in the dataset were identified by at least three GSSs, indicating that the majority of maize genes have been identified by at least one currently available GSS. Both methyl-filtration and high-Cot enrichment methods provided a 7- to 8-fold increase in gene discovery rates as compared to random sequencing. The available maize GSSs aligned to 75% of the FLC nucleotides used to perform searches, while the expressed sequence tag sequences aligned to 73% of the nucleotides. Our data suggest that at least approximately 95% of maize genes have been tagged by at least one GSS. While the GSSs are very effective for gene identification, relatively few (18%) of the FLCs are completely represented by GSSs. Analysis of the overlap of coverage and bias due to position within a gene suggest that RescueMu, methyl-filtration, and high-Cot methods are at least partially nonredundant.

MeSH Terms
Base Sequence Computational Biology DNA, Plant/chemistry Databases, Genetic Expressed Sequence Tags Genome, Plant Genomic Library Genomics/methods Promoter Regions, Genetic Sequence Analysis, DNA Sequence Homology, Nucleic Acid Zea mays/genetics
Chemicals
DNA, Plant
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Springer Nathan Michael
Center for Plant and Microbial Genomics, Department of Plant Biology, University of Minnesota, St. Paul, Minnesota 55108, USA. springer@umn.edu
Xu Xiequn
Barbazuk W Brad
References (23)
23 references, click to expand
  1. Life with 6000 genes.
    Science. 1996 Oct 25;274(5287):546, 563-7 PMID: 8849441
  2. Methylation-spanning linker libraries link gene-rich regions and identify epigenetic boundaries in Zea mays.
    Genome Res. 2002 Sep;12(9):1345-9 PMID: 12213771
  3. High-Cot sequence analysis of the maize genome.
    Plant J. 2003 Apr;34(2):249-55 PMID: 12694599
  4. Somatic and germinal mobility of the RescueMu transposon in transgenic maize.
    Plant Cell. 2001 Jul;13(7):1587-608 PMID: 11449053
  5. Genome sequence of the nematode C. elegans: a platform for investigating biology.
    Science. 1998 Dec 11;282(5396):2012-8 PMID: 9851916
  6. PlantProm: a database of plant promoter sequences.
    Nucleic Acids Res. 2003 Jan 1;31(1):114-7 PMID: 12519961
  7. Gene galaxies in the maize genome.
    Proc Natl Acad Sci U S A. 2001 Jul 17;98(15):8163-4 PMID: 11459945
  8. RescueMu protocols for maize functional genomics.
    Methods Mol Biol. 2003;236:37-58 PMID: 14501057
  9. Grass genomes.
    Proc Natl Acad Sci U S A. 1998 Mar 3;95(5):1975-8 PMID: 9482817
  10. Maize Mu transposons are targeted to the 5' untranslated region of the gl8 gene and sequences flanking Mu target-site duplications exhibit nonrandom nucleotide composition throughout the genome.
    Genetics. 2002 Feb;160(2):697-716 PMID: 11861572
  11. Integration of Cot analysis, DNA cloning, and high-throughput sequencing facilitates genome characterization and gene discovery.
    Genome Res. 2002 May;12(5):795-807 PMID: 11997346
  12. Maize genome sequencing by methylation filtration.
    Science. 2003 Dec 19;302(5653):2115-7 PMID: 14684820
  13. Differential methylation of genes and retrotransposons facilitates shotgun sequencing of the maize genome.
    Nat Genet. 1999 Nov;23(3):305-8 PMID: 10545948
  14. A whole-genome assembly of Drosophila.
    Science. 2000 Mar 24;287(5461):2196-204 PMID: 10731133
  15. Abundance, distribution, and transcriptional activity of repetitive elements in the maize genome.
    Genome Res. 2001 Oct;11(10):1660-76 PMID: 11591643
  16. Comparison of RNA expression profiles based on maize expressed sequence tag frequency analysis and micro-array hybridization.
    Plant Physiol. 2002 Mar;128(3):896-910 PMID: 11891246
  17. Enrichment of gene-coding sequences in maize by genome filtration.
    Science. 2003 Dec 19;302(5653):2118-20 PMID: 14684821
  18. The sequence of the human genome.
    Science. 2001 Feb 16;291(5507):1304-51 PMID: 11181995
  19. Nested retrotransposons in the intergenic regions of the maize genome.
    Science. 1996 Nov 1;274(5288):765-8 PMID: 8864112
  20. Analysis of the genome sequence of the flowering plant Arabidopsis thaliana.
    Nature. 2000 Dec 14;408(6814):796-815 PMID: 11130711
  21. Gene mapping with recombinant inbreds in maize.
    Genetics. 1988 Mar;118(3):519-26 PMID: 3366363
  22. The contributions of retroelements to plant genome organization, function and evolution.
    Trends Microbiol. 1996 Sep;4(9):347-53 PMID: 8885169
  23. Gapped BLAST and PSI-BLAST: a new generation of protein database search programs.
    Nucleic Acids Res. 1997 Sep 1;25(17):3389-402 PMID: 9254694
Article Info
Journal
Plant physiology
Abbr.
Plant Physiol
ISSN
0032-0889
Published
2004-10-00
Epub
2004-00-06
Pages
3023-33
Language
English
Region
United States
NLM ID
0401224
PMCID
PMC523364
Subset
IM
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