Home LiteratureArticle Details
PMID: 12096816 Published · ppublish English Comparative Study Journal Article Review

Comparative genomics in the grass family: molecular characterization of grass genome structure and evolution.

Annals of botany ·Vol. 89 ·No. 1 ·2002-01-00 ·Pages 3-10

Feuillet C, Keller B

Abstract

The genomes of grasses are very different in terms of size, ploidy level and chromosome number. Despite these significant differences, it was found by comparative mapping that the linear order (colinearity) of genetic markers and genes is very well conserved between different grass genomes. The potential of such conservation has been exploited in several directions, e.g. in defining rice as a model genome for grasses and in designing better strategies for positional cloning in large genomes. Recently, the development of large insert libraries in species such as maize, rice, barley and diploid wheat has allowed the study of large stretches of DNA sequence and has provided insight into gene organization in grasses. It was found that genes are not distributed randomly along the chromosomes and that there are clusters of high gene density in species with large genomes. Comparative analysis performed at the DNA sequence level has demonstrated that colinearity between the grass genomes is retained at the molecular level (microcolinearity) in most cases. However, detailed analysis has also revealed a number of exceptions to microcolinearity, which have given insight into mechanisms that are involved in grass-genome evolution. In some cases, the use of rice as a model to support gene isolation from other grass genomes will be complicated by local rearrangements. In this Botanical Briefing, we present recent progress and future prospects of comparative genomics in grasses.

MeSH Terms
Chromosome Mapping Evolution, Molecular Genome, Plant Hordeum/genetics Oryza/genetics Poaceae/genetics Recombination, Genetic Sequence Analysis, DNA Triticum/genetics Zea mays/genetics
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Feuillet Catherine
Institute of Plant Biology, University of Zürich, Switzerland. [email protected]
Keller Beat
References (45)
45 references, click to expand
  1. Genome relationships: the grass model in current research.
    Plant Cell. 2000 May;12(5):637-46 PMID: 10810140
  2. Analysis of a contiguous 211 kb sequence in diploid wheat (Triticum monococcum L.) reveals multiple mechanisms of genome evolution.
    Plant J. 2001 May;26(3):307-16 PMID: 11439119
  3. Comparative sequence analysis of plant nuclear genomes:m microcolinearity and its many exceptions.
    Plant Cell. 2000 Jul;12(7):1021-9 PMID: 10899971
  4. Construction and characterization of a bacterial artificial chromosome (BAC) library for the A genome of wheat.
    Genome. 1999 Dec;42(6):1176-82 PMID: 10659785
  5. Towards map-based cloning of the barley stem rust resistance genes Rpg1 and rpg4 using rice as an intergenomic cloning vehicle.
    Plant Mol Biol. 1997 Sep;35(1-2):187-95 PMID: 9291972
  6. Arabidopsis-rice: will colinearity allow gene prediction across the eudicot-monocot divide?
    Genome Res. 1999 Sep;9(9):825-9 PMID: 10508840
  7. The paleontology of intergene retrotransposons of maize.
    Nat Genet. 1998 Sep;20(1):43-5 PMID: 9731528
  8. A contiguous 60 kb genomic stretch from barley reveals molecular evidence for gene islands in a monocot genome.
    Nucleic Acids Res. 1998 Feb 15;26(4):1056-62 PMID: 9461468
  9. Identification and physical localization of useful genes and markers to a major gene-rich region on wheat group 1S chromosomes.
    Genetics. 2001 Apr;157(4):1735-47 PMID: 11290727
  10. Transposable element contributions to plant gene and genome evolution.
    Plant Mol Biol. 2000 Jan;42(1):251-69 PMID: 10688140
  11. Grass genomes.
    Proc Natl Acad Sci U S A. 1998 Mar 3;95(5):1975-8 PMID: 9482817
  12. The complete sequence of 340 kb of DNA around the rice Adh1-adh2 region reveals interrupted colinearity with maize chromosome 4.
    Plant Cell. 2000 Mar;12(3):381-91 PMID: 10715324
  13. Evolutionary history of the grasses.
    Plant Physiol. 2001 Mar;125(3):1198-205 PMID: 11244101
  14. Retrotransposon BARE-1 and Its Role in Genome Evolution in the Genus Hordeum.
    Plant Cell. 1999 Sep;11(9):1769-1784 PMID: 10488242
  15. Comparative genetics in the grasses.
    Plant Mol Biol. 1997 Sep;35(1-2):3-15 PMID: 9291955
  16. Comparative genetics in the grasses.
    Proc Natl Acad Sci U S A. 1998 Mar 3;95(5):1971-4 PMID: 9482816
  17. Colinearity and gene density in grass genomes.
    Trends Plant Sci. 2000 Jun;5(6):246-51 PMID: 10838615
  18. 'Green revolution' genes encode mutant gibberellin response modulators.
    Nature. 1999 Jul 15;400(6741):256-61 PMID: 10421366
  19. Physical mapping of the barley stem rust resistance gene rpg4.
    Mol Gen Genet. 2000 Oct;264(3):283-90 PMID: 11085268
  20. A contiguous 66-kb barley DNA sequence provides evidence for reversible genome expansion.
    Genome Res. 2000 Jul;10(7):908-15 PMID: 10899140
  21. Molecular evolution of receptor-like kinase genes in hexaploid wheat. Independent evolution of orthologs after polyploidization and mechanisms of local rearrangements at paralogous loci.
    Plant Physiol. 2001 Mar;125(3):1304-13 PMID: 11244111
  22. Sequence organization and conservation in sh2/a1-homologous regions of sorghum and rice.
    Genetics. 1998 Jan;148(1):435-43 PMID: 9475753
  23. Relationships of cereal crops and other grasses.
    Proc Natl Acad Sci U S A. 1998 Mar 3;95(5):2005-10 PMID: 9482825
  24. Gene identification in a complex chromosomal continuum by local genomic cross-referencing.
    Plant J. 1996 Dec;10(6):1163-8 PMID: 9011097
  25. Maize as a model for the evolution of plant nuclear genomes.
    Proc Natl Acad Sci U S A. 2000 Jun 20;97(13):7008-15 PMID: 10860964
  26. Do Plants Have a One-Way Ticket to Genomic Obesity?
    Plant Cell. 1997 Sep;9(9):1509-1514 PMID: 12237393
  27. Microcolinearity in sh2-homologous regions of the maize, rice, and sorghum genomes.
    Proc Natl Acad Sci U S A. 1997 Apr 1;94(7):3431-5 PMID: 9096411
  28. The origins of genomic duplications in Arabidopsis.
    Science. 2000 Dec 15;290(5499):2114-7 PMID: 11118139
  29. Convergent domestication of cereal crops by independent mutations at corresponding genetic Loci.
    Science. 1995 Sep 22;269(5231):1714-8 PMID: 17821643
  30. Identification of genomic regions affecting plant height in sorghum and maize.
    Theor Appl Genet. 1995 Mar;90(3-4):380-8 PMID: 24173928
  31. RFLP Maps Based on a Common Set of Clones Reveal Modes of Chromosomal Evolution in Potato and Tomato.
    Genetics. 1988 Dec;120(4):1095-103 PMID: 17246486
  32. Comparative sequence analysis of colinear barley and rice bacterial artificial chromosomes.
    Plant Physiol. 2001 Mar;125(3):1342-53 PMID: 11244114
  33. Retrotransposon evolution in diverse plant genomes.
    Genetics. 2000 Sep;156(1):313-25 PMID: 10978295
  34. Cereal genome evolution. Grasses, line up and form a circle.
    Curr Biol. 1995 Jul 1;5(7):737-9 PMID: 7583118
  35. Nested retrotransposons in the intergenic regions of the maize genome.
    Science. 1996 Nov 1;274(5288):765-8 PMID: 8864112
  36. Subgenome chromosome walking in wheat: a 450-kb physical contig in Triticum monococcum L. spans the Lr10 resistance locus in hexaploid wheat (Triticum aestivum L.).
    Proc Natl Acad Sci U S A. 2000 Nov 21;97(24):13436-41 PMID: 11078510
  37. Induction and characterization of Ph1 wheat mutants.
    Genetics. 1999 Dec;153(4):1909-18 PMID: 10581295
  38. Active retrotransposons are a common feature of grass genomes.
    Plant Physiol. 2001 Mar;125(3):1283-92 PMID: 11244109
  39. Plant retrotransposons.
    Annu Rev Genet. 1999;33:479-532 PMID: 10690416
  40. Identification and analysis of homoeologous segments of the genomes of rice and Arabidopsis thaliana.
    Genome. 1999 Oct;42(5):887-92 PMID: 10584310
  41. High gene density is conserved at syntenic loci of small and large grass genomes.
    Proc Natl Acad Sci U S A. 1999 Jul 6;96(14):8265-70 PMID: 10393983
  42. Colinearity and its exceptions in orthologous adh regions of maize and sorghum.
    Proc Natl Acad Sci U S A. 1999 Jun 22;96(13):7409-14 PMID: 10377428
  43. Toward a unified genetic map of higher plants, transcending the monocot-dicot divergence.
    Nat Genet. 1996 Dec;14(4):380-2 PMID: 8944014
  44. The contributions of retroelements to plant genome organization, function and evolution.
    Trends Microbiol. 1996 Sep;4(9):347-53 PMID: 8885169
  45. Evidence for DNA loss as a determinant of genome size.
    Science. 2000 Feb 11;287(5455):1060-2 PMID: 10669421
Article Info
Journal
Annals of botany
Abbr.
Ann Bot
ISSN
0305-7364
Published
2002-01-00
Pages
3-10
Language
English
Region
England
NLM ID
0372347
PMCID
PMC4233775
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]