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PMID: 15085449 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Sequence analysis of the long arm of rice chromosome 11 for rice-wheat synteny.

Functional & integrative genomics ·Vol. 4 ·No. 2 ·2004-05-00 ·Pages 102-17

Singh NK, Raghuvanshi S, Srivastava SK, Gaur A, Pal AK, Dalal V, Singh A, Ghazi IA, Bhargav A, Yadav M, Dixit A, Batra K, Gaikwad K, Sharma TR, Mohanty A, Bharti AK, Kapur A, Gupta V, Kumar D, Vij S, Vydianathan R, Khurana P, Sharma S, McCombie WR, Messing J, Wing R, Sasaki T, Khurana P, Mohapatra T, Khurana JP, Tyagi AK

Abstract

The DNA sequence of 106 BAC/PAC clones in the minimum tiling path (MTP) of the long arm of rice chromosome 11, between map positions 57.3 and 116.2 cM, has been assembled to phase 2 or PLN level. This region has been sequenced to 10x redundancy by the Indian Initiative for Rice Genome Sequencing (IIRGS) and is now publicly available in GenBank. The region, excluding overlaps, has been predicted to contain 2,932 genes using different software. A gene-by-gene BLASTN search of the NCBI wheat EST database of over 420,000 cDNA sequences revealed that 1,143 of the predicted rice genes (38.9%) have significant homology to wheat ESTs (bit score >/= 100). Further BLASTN search of these 1,143 rice genes with the GrainGenes database of sequence contigs containing bin-mapped wheat ESTs allowed 113 of the genes to be placed in bins located on wheat chromosomes of different homoeologous groups. The largest number of genes, about one-third, mapped to the homoeologous group 4 chromosomes of wheat, suggesting a common evolutionary origin. The remaining genes were located on wheat chromosomes of different groups with significantly higher numbers for groups 3 and 5. Location of bin-mapped wheat contigs to chromosomes of all the seven homoeologous groups can be ascribed to movement of genes (transpositions) or chromosome segments (translocations) within rice or the hexaploid wheat genomes. Alternatively, it could be due to ancient duplications in the common ancestral genome of wheat and rice followed by selective elimination of genes in the wheat and rice genomes. While there exists definite conservation of gene sequences and the ancestral chromosomal identity between rice and wheat, there is no obvious conservation of the gene order at this level of resolution. Lack of extensive colinearity between rice and wheat genomes suggests that there have been many insertions, deletions, duplications and translocations that make the synteny comparisons much more complicated than earlier thought. However, enhanced resolution of comparative sequence analysis may reveal smaller conserved regions of colinearity, which will facilitate selection of markers for saturation mapping and sequencing of the gene-rich regions of the wheat genome.

MeSH Terms
Base Sequence Chromosome Mapping Conserved Sequence Genetic Markers Oryza/genetics Sequence Analysis, DNA Synteny Triticum/genetics
Chemicals
Genetic Markers
Authors & Affiliations
31 authors, click to expand affiliations / ORCID
Singh Nagendra K
Indian Initiative for Rice Genome Sequencing, National Research Centre on Plant Biotechnology, Indian Agricultural Research Institute, 110012, New Delhi, India.
Raghuvanshi Saurabh
Srivastava Subodh K
Gaur Anupama
Pal Ajit K
Dalal Vivek
Singh Archana
Ghazi Irfan A
Bhargav Ashutosh
Yadav Mahavir
Dixit Anupam
Batra Kamlesh
Gaikwad Kishor
Sharma Tilak R
Mohanty Amitabh
Bharti Arvind K
Kapur Anita
Gupta Vikrant
Kumar Dibyendu
Vij Shubha
Vydianathan Ravi
Khurana Parul
Sharma Sulabha
McCombie W Richard
Messing Joachim
Wing Rod
Sasaki Takuji
Khurana Paramjit
Mohapatra Trilochan
Khurana Jitendra P
Tyagi Akhilesh K
References (19)
19 references, click to expand
  1. Mosaic organization of orthologous sequences in grass genomes.
    Genome Res. 2002 Oct;12(10):1549-55 PMID: 12368247
  2. RiceGAAS: an automated annotation system and database for rice genome sequence.
    Nucleic Acids Res. 2002 Jan 1;30(1):98-102 PMID: 11752265
  3. Grasses as a single genetic system: genome composition, collinearity and compatibility.
    Trends Genet. 1993 Aug;9(8):259-61 PMID: 8379002
  4. Advances in cereal functional genomics.
    Funct Integr Genomics. 2003 Mar;3(1-2):1-24 PMID: 12590339
  5. Rapid genome divergence at orthologous low molecular weight glutenin loci of the A and Am genomes of wheat.
    Plant Cell. 2003 May;15(5):1186-97 PMID: 12724543
  6. Allopolyploidy-induced rapid genome evolution in the wheat (Aegilops-Triticum) group.
    Plant Cell. 2001 Aug;13(8):1735-47 PMID: 11487689
  7. Comparative genome organization in plants: from sequence and markers to chromatin and chromosomes.
    Plant Cell. 2000 May;12(5):617-36 PMID: 10810139
  8. Sequence analysis of a rice BAC covering the syntenous barley Rpg1 region
    Genome. 1999 Dec;42(6):1071-6 PMID: 10659772
  9. Molecular-genetic maps for group 1 chromosomes of Triticeae species and their relation to chromosomes in rice and oat.
    Genome. 1995 Feb;38(1):45-59 PMID: 18470151
  10. Sequence-based alignment of sorghum chromosome 3 and rice chromosome 1 reveals extensive conservation of gene order and one major chromosomal rearrangement.
    Plant J. 2003 Jun;34(5):605-21 PMID: 12787243
  11. Comparative mapping of the two wheat leaf rust resistance loci Lr1 and Lr10 in rice and barley.
    Genome. 1998 Jun;41(3):328-36 PMID: 9729767
  12. Comparative DNA sequence analysis of wheat and rice genomes.
    Genome Res. 2003 Aug;13(8):1818-27 PMID: 12902377
  13. Molecular characterization of a set of wheat deletion stocks for use in chromosome bin mapping of ESTs.
    Funct Integr Genomics. 2003 Mar;3(1-2):39-55 PMID: 12590342
  14. Numerous small rearrangements of gene content, order and orientation differentiate grass genomes.
    Plant Mol Biol. 2002 Mar-Apr;48(5-6):821-7 PMID: 11999852
  15. Comparative genomics of plant chromosomes.
    Plant Cell. 2000 Sep;12(9):1523-40 PMID: 11006329
  16. Evidence that rice and other cereals are ancient aneuploids.
    Plant Cell. 2003 Sep;15(9):2192-202 PMID: 12953120
  17. An integrated physical and genetic map of the rice genome.
    Plant Cell. 2002 Mar;14(3):537-45 PMID: 11910002
  18. Unravelling angiosperm genome evolution by phylogenetic analysis of chromosomal duplication events.
    Nature. 2003 Mar 27;422(6930):433-8 PMID: 12660784
  19. Homoeologous relationships of rice, wheat and maize chromosomes.
    Mol Gen Genet. 1993 Dec;241(5-6):483-90 PMID: 7903411
Article Info
Journal
Functional & integrative genomics
Abbr.
Funct Integr Genomics
ISSN
1438-793X
Published
2004-05-00
Epub
2004-00-14
Pages
102-17
Language
English
Region
Germany
NLM ID
100939343
Subset
IM
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