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PMID: 19184460 Published · ppublish English Comparative Study Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Structural characterization of Brachypodium genome and its syntenic relationship with rice and wheat.

Plant molecular biology ·Vol. 70 ·No. 1-2 ·2009-05-00 ·Pages 47-61

Huo N, Vogel JP, Lazo GR, You FM, Ma Y, McMahon S, Dvorak J, Anderson OD, Luo MC, Gu YQ

Abstract

Brachypodium distachyon (Brachypodium) has been recently recognized as an emerging model system for both comparative and functional genomics in grass species. In this study, 55,221 repeat masked Brachypodium BAC end sequences (BES) were used for comparative analysis against the 12 rice pseudomolecules. The analysis revealed that approximately 26.4% of BES have significant matches with the rice genome and 82.4% of the matches were homologous to known genes. Further analysis of paired-end BES and approximately 1.0 Mb sequences from nine selected BACs proved to be useful in revealing conserved regions and regions that have undergone considerable genomic changes. Differential gene amplification, insertions/deletions and inversions appeared to be the common evolutionary events that caused variations of microcolinearity at different orthologous genomic regions. It was found that approximately 17% of genes in the two genomes are not colinear in the orthologous regions. Analysis of BAC sequences also revealed higher gene density (approximately 9 kb/gene) and lower repeat DNA content (approximately 13.1%) in Brachypodium when compared to the orthologous rice regions, consistent with the smaller size of the Brachypodium genome. The 119 annotated Brachypodium genes were BLASTN compared against the wheat EST database and deletion bin mapped wheat ESTs. About 77% of the genes retrieved significant matches in the EST database, while 9.2% matched to the bin mapped ESTs. In some cases, genes in single Brachypodium BACs matched to multiple ESTs that were mapped to the same deletion bins, suggesting that the Brachypodium genome will be useful for ordering wheat ESTs within the deletion bins and developing specific markers at targeted regions in the wheat genome.

MeSH Terms
Chromosomes, Artificial, Bacterial Conserved Sequence DNA, Plant/genetics Evolution, Molecular Expressed Sequence Tags Genes, Plant Genome, Plant Genomics Oryza/genetics Poaceae/genetics Sequence Alignment Sequence Analysis, DNA Synteny Triticum/genetics
Chemicals
DNA, Plant
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Huo Naxin
Genomics and Gene Discovery Research Unit, USDA-ARS, Western Regional Research Center, 800 Buchanan Street, Albany, CA 94710, USA.
Vogel John P
Lazo Gerard R
You Frank M
Ma Yaqin
McMahon Stephanie
Dvorak Jan
Anderson Olin D
Luo Ming-Cheng
Gu Yong Q
References (67)
67 references, click to expand
  1. Evolutionary history of the grasses.
    Plant Physiol. 2001 Mar;125(3):1198-205 PMID: 11244101
  2. A draft sequence of the rice genome (Oryza sativa L. ssp. japonica).
    Science. 2002 Apr 5;296(5565):92-100 PMID: 11935018
  3. Construction and analysis of a BAC library in the grass Brachypodium sylvaticum: its use as a tool to bridge the gap between rice and wheat in elucidating gene content.
    Funct Integr Genomics. 2004 Mar;4(1):26-33 PMID: 14727148
  4. Sequence composition, organization, and evolution of the core Triticeae genome.
    Plant J. 2004 Nov;40(4):500-11 PMID: 15500466
  5. High-throughput, nontargeted metabolite fingerprinting using nominal mass flow injection electrospray mass spectrometry.
    Nat Protoc. 2008;3(3):486-504 PMID: 18323818
  6. Gene loss and movement in the maize genome.
    Genome Res. 2004 Oct;14(10A):1924-31 PMID: 15466290
  7. Sequence composition and genome organization of maize.
    Proc Natl Acad Sci U S A. 2004 Oct 5;101(40):14349-54 PMID: 15388850
  8. The wheat and barley vernalization gene VRN3 is an orthologue of FT.
    Proc Natl Acad Sci U S A. 2006 Dec 19;103(51):19581-6 PMID: 17158798
  9. Molecular mapping of wheat: major genes and rearrangements in homoeologous groups 4, 5, and 7.
    Genetics. 1995 Oct;141(2):721-31 PMID: 8647405
  10. Mouse BAC ends quality assessment and sequence analyses.
    Genome Res. 2001 Oct;11(10):1736-45 PMID: 11591651
  11. Pack-MULE transposable elements mediate gene evolution in plants.
    Nature. 2004 Sep 30;431(7008):569-73 PMID: 15457261
  12. DNA rearrangement in orthologous orp regions of the maize, rice and sorghum genomes.
    Genetics. 2005 Jul;170(3):1209-20 PMID: 15834137
  13. Rapid recent growth and divergence of rice nuclear genomes.
    Proc Natl Acad Sci U S A. 2004 Aug 24;101(34):12404-10 PMID: 15240870
  14. Molecular characterization of Ph1 as a major chromosome pairing locus in polyploid wheat.
    Nature. 2006 Feb 9;439(7077):749-52 PMID: 16467840
  15. Cytogenetic evidence of nucleolar dominance in allotetraploid species of Brachypodium.
    Genome. 2008 May;51(5):387-91 PMID: 18438442
  16. Cereal genome evolution. Grasses, line up and form a circle.
    Curr Biol. 1995 Jul 1;5(7):737-9 PMID: 7583118
  17. Improvement of biomass through lignin modification.
    Plant J. 2008 May;54(4):569-81 PMID: 18476864
  18. Brachypodium distachyon. A new model system for functional genomics in grasses.
    Plant Physiol. 2001 Dec;127(4):1539-55 PMID: 11743099
  19. Curated genome annotation of Oryza sativa ssp. japonica and comparative genome analysis with Arabidopsis thaliana.
    Genome Res. 2007 Feb;17(2):175-83 PMID: 17210932
  20. Colinearity and gene density in grass genomes.
    Trends Plant Sci. 2000 Jun;5(6):246-51 PMID: 10838615
  21. Micro-colinearity between rice, Brachypodium, and Triticum monococcum at the wheat domestication locus Q.
    Funct Integr Genomics. 2008 May;8(2):149-64 PMID: 18210171
  22. Abundance, distribution, and transcriptional activity of repetitive elements in the maize genome.
    Genome Res. 2001 Oct;11(10):1660-76 PMID: 11591643
  23. Mosaic organization of orthologous sequences in grass genomes.
    Genome Res. 2002 Oct;12(10):1549-55 PMID: 12368247
  24. VISTA : visualizing global DNA sequence alignments of arbitrary length.
    Bioinformatics. 2000 Nov;16(11):1046-7 PMID: 11159318
  25. Analysis and mapping of randomly chosen bacterial artificial chromosome clones from hexaploid bread wheat.
    Proc Natl Acad Sci U S A. 2005 Dec 27;102(52):19243-8 PMID: 16357197
  26. Rice blast infection of Brachypodium distachyon as a model system to study dynamic host/pathogen interactions.
    Nat Protoc. 2008;3(3):435-45 PMID: 18323815
  27. Comparative genetics in the grasses.
    Proc Natl Acad Sci U S A. 1998 Mar 3;95(5):1971-4 PMID: 9482816
  28. Comparison of orthologous loci from small grass genomes Brachypodium and rice: implications for wheat genomics and grass genome annotation.
    Plant J. 2007 Feb;49(4):704-17 PMID: 17270010
  29. Resistance gene complexes: evolution and utilization.
    Annu Rev Phytopathol. 2001;39:285-312 PMID: 11701867
  30. Doubling genome size without polyploidization: dynamics of retrotransposition-driven genomic expansions in Oryza australiensis, a wild relative of rice.
    Genome Res. 2006 Oct;16(10):1262-9 PMID: 16963705
  31. A chromosome bin map of 16,000 expressed sequence tag loci and distribution of genes among the three genomes of polyploid wheat.
    Genetics. 2004 Oct;168(2):701-12 PMID: 15514046
  32. A cattle-human comparative map built with cattle BAC-ends and human genome sequence.
    Genome Res. 2003 Aug;13(8):1966-72 PMID: 12902387
  33. Structural organization of the barley D-hordein locus in comparison with its orthologous regions of wheat genomes.
    Genome. 2003 Dec;46(6):1084-97 PMID: 14663527
  34. Deletion mapping of homoeologous group 6-specific wheat expressed sequence tags.
    Genetics. 2004 Oct;168(2):677-86 PMID: 15514044
  35. A 2500-locus bin map of wheat homoeologous group 5 provides insights on gene distribution and colinearity with rice.
    Genetics. 2004 Oct;168(2):665-76 PMID: 15514043
  36. High-resolution mapping of the leaf rust disease resistance gene Lr1 in wheat and characterization of BAC clones from the Lr1 locus.
    Theor Appl Genet. 2003 Mar;106(5):875-82 PMID: 12647062
  37. Clusters of resistance genes in plants evolve by divergent selection and a birth-and-death process.
    Genome Res. 1998 Nov;8(11):1113-30 PMID: 9847076
  38. Sequence, annotation, and analysis of synteny between rice chromosome 3 and diverged grass species.
    Genome Res. 2005 Sep;15(9):1284-91 PMID: 16109971
  39. Brachypodium distachyon: making hay with a wild grass.
    Trends Plant Sci. 2008 Apr;13(4):172-7 PMID: 18343709
  40. A comprehensive rice transcript map containing 6591 expressed sequence tag sites.
    Plant Cell. 2002 Mar;14(3):525-35 PMID: 11910001
  41. Analyses of LTR-retrotransposon structures reveal recent and rapid genomic DNA loss in rice.
    Genome Res. 2004 May;14(5):860-9 PMID: 15078861
  42. Comparative DNA sequence analysis of wheat and rice genomes.
    Genome Res. 2003 Aug;13(8):1818-27 PMID: 12902377
  43. Fine scale genetic and physical mapping using interstitial deletion mutants of Lr34 /Yr18: a disease resistance locus effective against multiple pathogens in wheat.
    Theor Appl Genet. 2008 Feb;116(4):481-90 PMID: 18074114
  44. The nuclear genome of Brachypodium distachyon: analysis of BAC end sequences.
    Funct Integr Genomics. 2008 May;8(2):135-47 PMID: 17985162
  45. Mobile elements: drivers of genome evolution.
    Science. 2004 Mar 12;303(5664):1626-32 PMID: 15016989
  46. The wheat VRN2 gene is a flowering repressor down-regulated by vernalization.
    Science. 2004 Mar 12;303(5664):1640-4 PMID: 15016992
  47. Characterizing the composition and evolution of homoeologous genomes in hexaploid wheat through BAC-end sequencing on chromosome 3B.
    Plant J. 2006 Nov;48(3):463-74 PMID: 17010109
  48. Rice as a model for comparative genomics of plants.
    Annu Rev Plant Biol. 2002;53:399-419 PMID: 12221982
  49. Brachypodium genomics.
    Int J Plant Genomics. 2008;2008:536104 PMID: 18309367
  50. Uneven chromosome contraction and expansion in the maize genome.
    Genome Res. 2006 Oct;16(10):1241-51 PMID: 16902087
  51. The maize genome contains a helitron insertion.
    Plant Cell. 2003 Feb;15(2):381-91 PMID: 12566579
  52. Gene movement by Helitron transposons contributes to the haplotype variability of maize.
    Proc Natl Acad Sci U S A. 2005 Jun 21;102(25):9068-73 PMID: 15951422
  53. Comparing low coverage random shotgun sequence data from Brassica oleracea and Oryza sativa genome sequence for their ability to add to the annotation of Arabidopsis thaliana.
    Genome Res. 2005 Apr;15(4):496-504 PMID: 15805491
  54. Retrotransposon BARE-1 and Its Role in Genome Evolution in the Genus Hordeum.
    Plant Cell. 1999 Sep;11(9):1769-1784 PMID: 10488242
  55. Recombination rates between adjacent genic and retrotransposon regions in maize vary by 2 orders of magnitude.
    Proc Natl Acad Sci U S A. 2002 Jan 22;99(2):1082-7 PMID: 11792865
  56. Biology's new Rosetta stone.
    Nature. 1997 Jan 2;385(6611):29-30 PMID: 8985242
  57. Human, mouse, and rat genome large-scale rearrangements: stability versus speciation.
    Genome Res. 2004 Oct;14(10A):1851-60 PMID: 15364903
  58. Physical and genetic structure of the maize genome reflects its complex evolutionary history.
    PLoS Genet. 2007 Jul;3(7):e123 PMID: 17658954
  59. Identification and characterization of shared duplications between rice and wheat provide new insight into grass genome evolution.
    Plant Cell. 2008 Jan;20(1):11-24 PMID: 18178768
  60. Nested retrotransposons in the intergenic regions of the maize genome.
    Science. 1996 Nov 1;274(5288):765-8 PMID: 8864112
  61. Nuclear DNA amounts in angiosperms: progress, problems and prospects.
    Ann Bot. 2005 Jan;95(1):45-90 PMID: 15596457
  62. Consistent over-estimation of gene number in complex plant genomes.
    Curr Opin Plant Biol. 2004 Dec;7(6):732-6 PMID: 15491923
  63. Rice as a model for cereal genomics.
    Curr Opin Plant Biol. 1999 Apr;2(2):86-9 PMID: 10322198
  64. Substitution rate comparisons between grasses and palms: synonymous rate differences at the nuclear gene Adh parallel rate differences at the plastid gene rbcL.
    Proc Natl Acad Sci U S A. 1996 Sep 17;93(19):10274-9 PMID: 8816790
  65. EST sequencing and phylogenetic analysis of the model grass Brachypodium distachyon.
    Theor Appl Genet. 2006 Jul;113(2):186-95 PMID: 16791686
  66. The map-based sequence of the rice genome.
    Nature. 2005 Aug 11;436(7052):793-800 PMID: 16100779
  67. The Genomes of Oryza sativa: a history of duplications.
    PLoS Biol. 2005 Feb;3(2):e38 PMID: 15685292
Article Info
Journal
Plant molecular biology
Abbr.
Plant Mol Biol
ISSN
1573-5028
Published
2009-05-00
Epub
2009-00-29
Pages
47-61
Language
English
Region
Netherlands
NLM ID
9106343
Subset
IM
Analysis Services
Analysis Services

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