Home LiteratureArticle Details
PMID: 16703363 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Analysis of papaya BAC end sequences reveals first insights into the organization of a fruit tree genome.

Molecular genetics and genomics : MGG ·Vol. 276 ·No. 1 ·2006-07-00 ·Pages 1-12

Lai CW, Yu Q, Hou S, Skelton RL, Jones MR, Lewis KL, Murray J, Eustice M, Guan P, Agbayani R, Moore PH, Ming R, Presting GG

Abstract

Papaya (Carica papaya L.) is a major tree fruit crop of tropical and subtropical regions with an estimated genome size of 372 Mbp. We present the analysis of 4.7% of the papaya genome based on BAC end sequences (BESs) representing 17 million high-quality bases. Microsatellites discovered in 5,452 BESs and flanking primer sequences are available to papaya breeding programs at http://www.genomics.hawaii.edu/papaya/BES . Sixteen percent of BESs contain plant repeat elements, the vast majority (83.3%) of which are class I retrotransposons. Several novel papaya-specific repeats were identified. Approximately 19.1% of the BESs have homology to Arabidopsis cDNA. Increasing numbers of completely sequenced plant genomes and BES projects enable novel approaches to comparative plant genomics. Paired BESs of Carica, Arabidopsis, Populus, Brassica and Lycopersicon were mapped onto the completed genomes of Arabidopsis and Populus. In general the level of microsynteny was highest between closely related organisms. However, papaya revealed a higher degree of apparent synteny with the more distantly related poplar than with the more closely related Arabidopsis. This, as well as significant colinearity observed between peach and poplar genome sequences, support recent observations of frequent genome rearrangements in the Arabidopsis lineage and suggest that the poplar genome sequence may be more useful for elucidating the papaya and other rosid genomes. These insights will play a critical role in selecting species and sequencing strategies that will optimally represent crop genomes in sequence databases.

MeSH Terms
Carica/genetics Cell Lineage Chromosomes, Artificial, Bacterial DNA, Complementary/genetics DNA, Plant/genetics Gene Rearrangement Genome, Plant Microsatellite Repeats Phylogeny Retroelements Sequence Analysis, DNA Trees/genetics
Chemicals
DNA, Complementary DNA, Plant Retroelements
Authors & Affiliations
13 authors, click to expand affiliations / ORCID
Lai Chun Wan J
Department of Molecular Biosciences and Bioengineering, University of Hawaii, 1955 East-West Road, Agricultural Sciences Building Room 218, Honolulu, HI, 96822, USA.
Yu Qingyi
Hou Shaobin
Skelton Rachel L
Jones Meghan R
Lewis Kanako L T
Murray Jan
Eustice Moriah
Guan Peizhu
Agbayani Ricelle
Moore Paul H
Ming Ray
Presting Gernot G
References (36)
36 references, click to expand
  1. Construction of a BAC library of Korean ginseng and initial analysis of BAC-end sequences.
    Mol Genet Genomics. 2004 Jul;271(6):709-16 PMID: 15197578
  2. AFLP analysis of genetic relationships among papaya and its wild relatives (Caricaceae) from Ecuador.
    Theor Appl Genet. 2002 Aug;105(2-3):289-297 PMID: 12582531
  3. Genetic diversity of Carica papaya as revealed by AFLP markers.
    Genome. 2002 Jun;45(3):503-12 PMID: 12033619
  4. Syntenic relationships between Medicago truncatula and Arabidopsis reveal extensive divergence of genome organization.
    Plant Physiol. 2003 Mar;131(3):1018-26 PMID: 12644654
  5. Cloning and stable maintenance of 300-kilobase-pair fragments of human DNA in Escherichia coli using an F-factor-based vector.
    Proc Natl Acad Sci U S A. 1992 Sep 15;89(18):8794-7 PMID: 1528894
  6. A draft sequence of the rice genome (Oryza sativa L. ssp. japonica).
    Science. 2002 Apr 5;296(5565):92-100 PMID: 11935018
  7. Mouse BAC ends quality assessment and sequence analyses.
    Genome Res. 2001 Oct;11(10):1736-45 PMID: 11591651
  8. Base-calling of automated sequencer traces using phred. II. Error probabilities.
    Genome Res. 1998 Mar;8(3):186-94 PMID: 9521922
  9. A complex history of rearrangement in an orthologous region of the maize, sorghum, and rice genomes.
    Proc Natl Acad Sci U S A. 2003 Oct 14;100(21):12265-70 PMID: 14530400
  10. Computational and experimental analysis of microsatellites in rice (Oryza sativa L.): frequency, length variation, transposon associations, and genetic marker potential.
    Genome Res. 2001 Aug;11(8):1441-52 PMID: 11483586
  11. Differential distribution of simple sequence repeats in eukaryotic genome sequences.
    Mol Biol Evol. 2001 Jul;18(7):1161-7 PMID: 11420357
  12. Comparison of peach and Arabidopsis genomic sequences: fragmentary conservation of gene neighborhoods.
    Genome. 2003 Apr;46(2):268-76 PMID: 12723043
  13. Mining EST databases to resolve evolutionary events in major crop species.
    Genome. 2004 Oct;47(5):868-76 PMID: 15499401
  14. Construction and characterization of the IGF Arabidopsis BAC library.
    Mol Gen Genet. 1998 Jun;258(5):562-70 PMID: 9669340
  15. The CLUSTAL_X windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools.
    Nucleic Acids Res. 1997 Dec 15;25(24):4876-82 PMID: 9396791
  16. Bacterial artificial chromosome (BAC) library resource for positional cloning of pest and disease resistance genes in cassava (Manihot esculenta Crantz).
    Plant Mol Biol. 2004 Nov;56(4):555-61 PMID: 15630619
  17. Sequence composition and genome organization of maize.
    Proc Natl Acad Sci U S A. 2004 Oct 5;101(40):14349-54 PMID: 15388850
  18. Rice transposable elements: a survey of 73,000 sequence-tagged-connectors.
    Genome Res. 2000 Jul;10(7):982-90 PMID: 10899147
  19. The map-based sequence of the rice genome.
    Nature. 2005 Aug 11;436(7052):793-800 PMID: 16100779
  20. Basic local alignment search tool.
    J Mol Biol. 1990 Oct 5;215(3):403-10 PMID: 2231712
  21. In-depth view of structure, activity, and evolution of rice chromosome 10.
    Science. 2003 Jun 6;300(5625):1566-9 PMID: 12791992
  22. High-resolution pachytene chromosome mapping of bacterial artificial chromosomes anchored by genetic markers reveals the centromere location and the distribution of genetic recombination along chromosome 10 of rice.
    Genetics. 2001 Apr;157(4):1749-57 PMID: 11290728
  23. Comparative physical mapping of segments of the genome of Brassica oleracea var. alboglabra that are homoeologous to sequenced regions of chromosomes 4 and 5 of Arabidopsis thaliana.
    Plant J. 2000 Jul;23(2):233-43 PMID: 10929117
  24. A primitive Y chromosome in papaya marks incipient sex chromosome evolution.
    Nature. 2004 Jan 22;427(6972):348-52 PMID: 14737167
  25. Comparative genomics of Gossypium and Arabidopsis: unraveling the consequences of both ancient and recent polyploidy.
    Genome Res. 2005 Sep;15(9):1198-210 PMID: 16109973
  26. Comparative genomics enabled the isolation of the R3a late blight resistance gene in potato.
    Plant J. 2005 Apr;42(2):251-61 PMID: 15807786
  27. Primer3 on the WWW for general users and for biologist programmers.
    Methods Mol Biol. 2000;132:365-86 PMID: 10547847
  28. Evolution of the angiosperms: calibrating the family tree.
    Proc Biol Sci. 2001 Nov 7;268(1482):2211-20 PMID: 11674868
  29. Positional cloning of the wheat vernalization gene VRN1.
    Proc Natl Acad Sci U S A. 2003 May 13;100(10):6263-8 PMID: 12730378
  30. Analysis of the genome sequence of the flowering plant Arabidopsis thaliana.
    Nature. 2000 Dec 14;408(6814):796-815 PMID: 11130711
  31. Rates of nucleotide substitution in angiosperm mitochondrial DNA sequences and dates of divergence between Brassica and other angiosperm lineages.
    J Mol Evol. 1999 May;48(5):597-604 PMID: 10198125
  32. High-density linkage mapping revealed suppression of recombination at the sex determination locus in papaya.
    Genetics. 2004 Jan;166(1):419-36 PMID: 15020433
  33. Frequency, type, distribution and annotation of simple sequence repeats in Rosaceae ESTs.
    Funct Integr Genomics. 2005 Jul;5(3):136-43 PMID: 15761705
  34. An integrated physical and genetic map of the rice genome.
    Plant Cell. 2002 Mar;14(3):537-45 PMID: 11910002
  35. Base-calling of automated sequencer traces using phred. I. Accuracy assessment.
    Genome Res. 1998 Mar;8(3):175-85 PMID: 9521921
  36. Unravelling angiosperm genome evolution by phylogenetic analysis of chromosomal duplication events.
    Nature. 2003 Mar 27;422(6930):433-8 PMID: 12660784
Article Info
Journal
Molecular genetics and genomics : MGG
Abbr.
Mol Genet Genomics
ISSN
1617-4615
Published
2006-07-00
Epub
2006-00-16
Pages
1-12
Language
English
Region
Germany
NLM ID
101093320
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]