Genome Research

Home Help [Feedback] [For Subscribers] [Archive] [Search] [Contents]
 QUICK SEARCH:   [advanced]


     


Published online before print August 18, 2005, 10.1101/gr.4134305
Genome Res. 15:1307-1314, 2005
©2005 by Cold Spring Harbor Laboratory Press; ISSN 1088-9051/05 $5.00
OPEN ACCESS ARTICLE
This Article
OPEN ACCESS ARTICLE
Right arrow Full Text
Right arrow Full Text (PDF)
Right arrow Supplemental Research Data
Right arrow Figure 1/Poster
Right arrow All Versions of this Article:
gr.4134305v1
15/9/1307    most recent
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Right arrow Citation Map
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Woods, I. G.
Right arrow Articles by Talbot, W. S.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Woods, I. G.
Right arrow Articles by Talbot, W. S.
Social Bookmarking
 Add to CiteULike   Add to Connotea   Add to Del.icio.us   Add to Digg   Add to Reddit   Add to Technorati  
What's this?

Resources

The zebrafish gene map defines ancestral vertebrate chromosomes

Ian G. Woods1, Catherine Wilson2, Brian Friedlander1, Patricia Chang1, Daengnoy K. Reyes1, Rebecca Nix1, Peter D. Kelly1, Felicia Chu1, John H. Postlethwait2 and William S. Talbot1,3

1 Department of Developmental Biology, Stanford University School of Medicine, Stanford, California 94305-5329, USA 2 Institute of Neuroscience, University of Oregon, Eugene, Oregon 97403-1254, USA

Genetic screens in zebrafish (Danio rerio) have identified mutations that define the roles of hundreds of essential vertebrate genes. Genetic maps can link mutant phenotype with gene sequence by providing candidate genes for mutations and polymorphic genetic markers useful in positional cloning projects. Here we report a zebrafish genetic map comprising 4073 polymorphic markers, with more than twice the number of coding sequences localized in previously reported zebrafish genetic maps. We use this map in comparative studies to identify numerous regions of synteny conserved among the genomes of zebrafish, Tetraodon, and human. In addition, we use our map to analyze gene duplication in the zebrafish and Tetraodon genomes. Current evidence suggests that a whole-genome duplication occurred in the teleost lineage after it split from the tetrapod lineage, and that only a subset of the duplicates have been retained in modern teleost genomes. It has been proposed that differential retention of duplicate genes may have facilitated the isolation of nascent species formed during the vast radiation of teleosts. We find that different duplicated genes have been retained in zebrafish and Tetraodon, although similar numbers of duplicates remain in both genomes. Finally, we use comparative mapping data to address the proposal that the common ancestor of vertebrates had a genome consisting of 12 chromosomes. In a three-way comparison between the genomes of zebrafish, Tetraodon, and human, our analysis delineates the gene content for 11 of these 12 proposed ancestral chromosomes.


3 Corresponding author.
E-mail talbot{at}cmgm.stanford.edu; fax (650) 725-7739.

[Supplemental material is available online at www.genome.org.]

Article and publication are at http://www.genome.org/cgi/doi/10.1101/gr.4134305. Article published online before print in August 2005. Freely available online through the Genome Research Immediate Open Access option.


Add to CiteULike CiteULike   Add to Connotea Connotea   Add to Del.icio.us Del.icio.us   Add to Digg Digg   Add to Reddit Reddit   Add to Technorati Technorati    What's this?


This article has been cited by other articles:


Home page
Genome ResHome page
M. M. Hill, K. W. Broman, E. Stupka, W. C. Smith, D. Jiang, and A. Sidow
The C. savignyi genetic map and its integration with the reference sequence facilitates insights into chordate genome evolution
Genome Res., August 1, 2008; 18(8): 1369 - 1379.
[Abstract] [Full Text] [PDF]


Home page
Mol Biol EvolHome page
S. Mungpakdee, H.-C. Seo, A. R. Angotzi, X. Dong, A. Akalin, and D. Chourrout
Differential Evolution of the 13 Atlantic Salmon Hox Clusters
Mol. Biol. Evol., July 1, 2008; 25(7): 1333 - 1343.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Regul. Integr. Comp. Physiol.Home page
D. Alsop and M. M. Vijayan
Development of the corticosteroid stress axis and receptor expression in zebrafish
Am J Physiol Regulatory Integrative Comp Physiol, March 1, 2008; 294(3): R711 - R719.
[Abstract] [Full Text] [PDF]


Home page
BloodHome page
S. O. Park, Y. J. Lee, T. Seki, K.-H. Hong, N. Fliess, Z. Jiang, A. Park, X. Wu, V. Kaartinen, B. L. Roman, et al.
ALK5- and TGFBR2-independent role of ALK1 in the pathogenesis of hereditary hemorrhagic telangiectasia type 2
Blood, January 15, 2008; 111(2): 633 - 642.
[Abstract] [Full Text] [PDF]


Home page
FASEB J.Home page
S. Jia, M. Omelchenko, D. Garland, V. Vasiliou, J. Kanungo, M. Spencer, Y. Wolf, E. Koonin, and J. Piatigorsky
Duplicated gelsolin family genes in zebrafish: a novel scinderin-like gene (scinla) encodes the major corneal crystallin
FASEB J, October 1, 2007; 21(12): 3318 - 3328.
[Abstract] [Full Text] [PDF]


Home page
Genome ResHome page
Y. Nakatani, H. Takeda, Y. Kohara, and S. Morishita
Reconstruction of the vertebrate ancestral genome reveals dynamic genome reorganization in early vertebrates
Genome Res., September 1, 2007; 17(9): 1254 - 1265.
[Abstract] [Full Text] [PDF]


Home page
GeneticsHome page
J. J. Smith and S. R. Voss
Bird and Mammal Sex-Chromosome Orthologs Map to the Same Autosomal Region in a Salamander (Ambystoma)
Genetics, September 1, 2007; 177(1): 607 - 613.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
D. A. Buchner, F. Su, J. S. Yamaoka, M. Kamei, J. A. Shavit, L. K. Barthel, B. McGee, J. D. Amigo, S. Kim, A. W. Hanosh, et al.
From the Cover: pak2a mutations cause cerebral hemorrhage in redhead zebrafish
PNAS, August 28, 2007; 104(35): 13996 - 14001.
[Abstract] [Full Text] [PDF]


Home page
J. Immunol.Home page
G. W. Glenney and G. D. Wiens
Early Diversification of the TNF Superfamily in Teleosts: Genomic Characterization and Expression Analysis
J. Immunol., June 15, 2007; 178(12): 7955 - 7973.
[Abstract] [Full Text] [PDF]


Home page
EndocrinologyHome page
Y. Wang, J. Li, C. Y. Wang, A. H. Y. Kwok, and F. C. Leung
Identification of the Endogenous Ligands for Chicken Growth Hormone-Releasing Hormone (GHRH) Receptor: Evidence for a Separate Gene Encoding GHRH in Submammalian Vertebrates
Endocrinology, May 1, 2007; 148(5): 2405 - 2416.
[Abstract] [Full Text] [PDF]


Home page
Genome ResHome page
H. Kikuta, M. Laplante, P. Navratilova, A. Z. Komisarczuk, P. G. Engstrom, D. Fredman, A. Akalin, M. Caccamo, I. Sealy, K. Howe, et al.
Genomic regulatory blocks encompass multiple neighboring genes and maintain conserved synteny in vertebrates
Genome Res., May 1, 2007; 17(5): 545 - 555.
[Abstract] [Full Text] [PDF]


Home page
J Mol EndocrinolHome page
M. J Leaver, M T. Ezaz, S. Fontagne, D. R Tocher, E. Boukouvala, and G. Krey
Multiple peroxisome proliferator-activated receptor {beta} subtypes from Atlantic salmon (Salmo salar)
J. Mol. Endocrinol., March 1, 2007; 38(3): 391 - 400.
[Abstract] [Full Text] [PDF]


Home page
Mol Biol EvolHome page
M. Semon and K. H. Wolfe
Rearrangement Rate following the Whole-Genome Duplication in Teleosts
Mol. Biol. Evol., March 1, 2007; 24(3): 860 - 867.
[Abstract] [Full Text] [PDF]


Home page
Mol. Interv.Home page
H. Rompler, C. Staubert, D. Thor, A. Schulz, M. Hofreiter, and T. Schoneberg
G Protein-Coupled Time Travel: Evolutionary Aspects of GPCR Research
Mol. Interv., February 1, 2007; 7(1): 17 - 25.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
R. E. Hernandez, A. P. Putzke, J. P. Myers, L. Margaretha, and C. B. Moens
Cyp26 enzymes generate the retinoic acid response pattern necessary for hindbrain development
Development, January 1, 2007; 134(1): 177 - 187.
[Abstract] [Full Text] [PDF]


Home page
Mol Biol EvolHome page
F. G. Brunet, H. R. Crollius, M. Paris, J.-M. Aury, P. Gibert, O. Jaillon, V. Laudet, and M. Robinson-Rechavi
Gene Loss and Evolutionary Rates Following Whole-Genome Duplication in Teleost Fishes
Mol. Biol. Evol., September 1, 2006; 23(9): 1808 - 1816.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
V. Laize, C. S. B. Viegas, P. A. Price, and M. L. Cancela
Identification of an Osteocalcin Isoform in Fish with a Large Acidic Prodomain
J. Biol. Chem., June 2, 2006; 281(22): 15037 - 15043.
[Abstract] [Full Text] [PDF]


Home page
Mol Biol EvolHome page
I. Braasch, W. Salzburger, and A. Meyer
Asymmetric Evolution in Two Fish-Specifically Duplicated Receptor Tyrosine Kinase Paralogons Involved in Teleost Coloration
Mol. Biol. Evol., June 1, 2006; 23(6): 1192 - 1202.
[Abstract] [Full Text] [PDF]


Home page
Genome ResHome page
V. Guryev, M. J. Koudijs, E. Berezikov, S. L. Johnson, R. H.A. Plasterk, F. J.M. van Eeden, and E. Cuppen
Genetic variation in the zebrafish
Genome Res., April 1, 2006; 16(4): 491 - 497.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
G. Bellipanni, M. Varga, S. Maegawa, Y. Imai, C. Kelly, A. P. Myers, F. Chu, W. S. Talbot, and E. S. Weinberg
Essential and opposing roles of zebrafish {beta}-catenins in the formation of dorsal axial structures and neurectoderm
Development, April 1, 2006; 133(7): 1299 - 1309.
[Abstract] [Full Text] [PDF]




Home Help [Feedback] [For Subscribers] [Archive] [Search] [Contents]
Genes Dev. Learn. Mem.
Protein Science RNA Genome Res.
Copyright © 2005 by Cold Spring Harbor Laboratory Press.