Bielawski J P, Pumo D E. Randomly amplified polymorphic DNA (RAPD) analysis of Atlantic coast striped bass [J]. Heredity, 1997, 78: 32-40.
[3]
Coughlan J, McCarthy E, McGregor D. Four polymorphic microsatellites in turbot Scophthalmus maximus [J]. Animal Genetics, 1996, 27(6): 441-447.
[4]
Harald H, Svein L, Mona M, et al. A Bkm-related DNA sequence gives individual DNA fingerprints in turbot (Scophthalmus maximus) [J]. Comparative Biochemistry and Physiology, 1994, 107B(1): 69-73.
[5]
Estoup A, Gharbi K, SanCristobal M. Parentage assignment using microsatellites in turbot (Scophthalmus maximus )and rainbow trout ( Oncorhynchus mykiss ) hatchery populations [J]. Can J Fish Aquat Sci, 1998, 55(3): 715-725.
[6]
Coughlan J P, Imsland A K, Galvin P T. Microsatellite DNA variation in wild populations and farmed strains of turbot from Ireland and Norway: a preliminary study[J]. J Fish Biol, 1998, 52(5): 916-922.
[7]
Iyengar A, Piyapattanakorn S, Stone D M. et al.Identification of microsatellite repeats in turbot and Dover sole (Solea solea) using a RAPD-based technique: Characterization of microsatellite markers in Dover sole [J]. Mar Biotechnol, 2000, 2(1): 49-56.
[8]
Blouin M S, Parsons M, Lacaille V, et al. Use of microsatellite loci to classify individuals by relatedness [J]. Molecular Ecology, 1996, 3: 393-401.
[9]
O, Reilly P T, Herbinger C, Wright J M. Analysis of parentage determination in Atlantic salmon (Salmo salar) using microsatllites [J]. Animal Genetics,1998, 29: 363-370.
[10]
Sekino M. Takagi, N, Hara M, et al. Analysis of microsatellite DNA polymorphisms in rockfish Sebastes thompsoni and application to population genetic studies [J]. Mar biotechnol, 2001, 3: 45-52.
[11]
Sekino M, Hara M. Inheritance characteristics of microsatellite DNA loci in experimental families of Japanese flounder Paralichthys olivaceus [J]. Mar Biotechnol, 2002, 3: 310- 315.
[12]
Ruzzante D E, Wroblewski J S, Taggart C T, et al.Bay-scale population structure in coastal Atlantic cod in Labrador and Newfoundland [J], Canada J Fish Biol, 2000, 56: 431-447.
[13]
O, Connell M, Dillon M C, Wright J M, et al. Genetic structuring among Alaskan Pacific herring po pulations identified using microsatellite variation [J].J Fish Biol, 1998, 53: 150-163.
[14]
O, Connell M, Wright J M, Microsatellite DNA in fishes [J]. Rev Fish Bio Fisheries, 1997, 7: 331-363.
[15]
Garcia de Leon F J, Chikhi L, Bonhomme F. Microsatellite polymorphism and population subdivision in natural population of European sea bass Dicentrarchus labrax (Linnaeus, 1758) [J]. Mol Ecol, 1997,6: 51-62.
[16]
Norris A T, Bradler D G, Cunningham E P, Microsatellite genetic variation between and within farmed and wild Atlantic salmon (Salmo salar) populations[J]. Aquaculture, 1997, 180: 247-264.
[17]
Sekino M, Hara M, Taniguchi N. Loss of microsatellite and mitochondrial DNA variation in hatchery strains of Japanese flounder Paralichthys olivaceus[J]. Aquaculture, 2002, 213: 101-122.
Ziekiewicz E, Rafalski A, Labuda D. Genome fingerprinting by simple sequence repeat (SSR) anchored polymerase chain reaction amplification [J].Genomics, 1994, 20: 176-183.
[22]
Vos P, Hogers R, Bleeker M, et al. AFLP: A new technique for DNA fingerprinting [J]. Nucleic Acids Research, 1 995, 23 (21): 4 407-4 414.
[23]
Sekino M, Hara M. Isolation and characterization of microsatellite DNA loci in Japanese flounder Paralichthys olivaceus (Pleuronectiformes, Pleuronectoidei, Paralichthyidae) [J]. Mol Ecol, 2000, 9:2 200-2 202.
[24]
Sekino M, Hara M. Application of microsatellite markers to population genetics studies of Japanese flounder Paralichth ys olivaceus [J]. Marine Biotechnology, 2001, 3: 572-589.
[25]
Liu Z, Nichols A, Li P, et al. Inheritance and usefulness of AFLP markers in channel catfish (Ictalurus punctatus ) , blue catfish (I. Furcatus) , and their F1, F2, and backcross hybrids [J]. Molecular General Genetics, 1998, 258: 260-268.
Felip A, Martinez-Rodriguez G, Piferrer F, et al. AFLP analysis confirms exclusive maternal genomic contribution of Meiogynogenetic Sea Bass (Dicentrarchus labrax L. )[J]. Marine Biotechnology, 2000, 2:301-306.
[28]
Goss R, Nilsson J, Schmitz M. A new species-specific nuclear DNA marker for identification of hybrids between Atlantic salmon and brown Trout [J]. Journal of Fish Biology, 1996, 49: 537-540
[29]
Moore S S, Whan V. The development and application of genetic markers for the Kuruma prawn Penaeus japonicus [J]. Aquaculture, 1999, 173:19 - 32.
[30]
Wilson K, Li Y, Whan V, et al. Genetic mapping of the black tiger shrimp Penaeus monodon with amplified fragment length polymorphism [J]. Aquaculture, 2002, 204(3-4): 297-309.
[31]
Li Y, Byrne K. Genetic mapping of the kuruma prawn Penaeus japonicus using AFLP markers [J].Aquaculture, 2003, 219:143- 156.
[32]
Kocher T D, Lee W J, Sobolewska H, et al. A genetic linkage map of a cichlid fish, the tilapia (Oreochromis niloticus) [J]. Genetics, 1998, 148:1 225-1 232.
[33]
Young W P, Wheeler P A, Coryell V H, etal. The development and application of genetic markers for the Kuruma prawn Penaeus japonicus [J]. Aquaculture, 1999, 173:19-32.
[34]
Nichols K. Plant, animal and microbe genome X [M]. USA:Proceeding of San Diego, 2002. 234-251.
[35]
Wada H, Naruse K, Shimada A, etal. Genetic linkage map of a fish, the Japanese medaka Oryzias latipes [J]. Mol Mar Biol Biotechnol, 1999, 4:269-274.
[36]
Ohtsuka M, Makino S, Yoda K, etal. Construction of a linkage map of the medaka (Oryzias latipes) and mapping of the Da mutant locus defective in dorsoventral patlerning [J]. Genome Res, 1999, 9:1 277-1 287.
[37]
Liu Z, Karsi A, Li P, et al. An AFLP-based genetic linkage map of channel catfish (Lctalurus punctatus) constructed by using an interspecific hybrid resource family [J]. Genetics, 2003, 165: 687-694.
[38]
Poompuang S, Na-Nakorn U. A preliminary genetic map of walking catfish (Clarias macrocephalus) [J].Aquaculture, 2004, 232:195 203
[39]
Sakamoto T, Danzmann R G. Okamoto N, et al.Linkage analysis of quantitative trait loci associated with spawning time in rainbow trout (Oncorhynchus mykiss) [J]. Aquaculture, 1999, 173: 33-43.
[40]
Ozaki A, Sakamoto T, Khoo S, et al. Quantitative trait loci (QTL) associated with resistance/susceptibility to infectious pancreatic necrosis virus (IPNV) in rainbow trout (Oncorhynchus mykiss) [J]. Mol genet Genomics, 2001, 265: 23-31.
[41]
Nakamura K, Ozaki A, Akutsu T, et al. Genetic mapping of the dominant albino locus in rainbow trout (Oncorhynchus mykiss) [J]. Molecular Genetics and Genomies, 2001, 265(4): 687-693.
[42]
Griffiths R, Orr K J, Adam A, etal. DNA sex identification in the three-spined stickleback [J]. Journul of Fish Biology, 2000, 57(56): 1 331-1 342.
[43]
Yoshimura S. Identification of a YAC clone carrying the Xa-1 allele, a bacterial blight resistance gene in rice [J]. Theor Appl Genet, 1996, 93: 117-122.
[44]
Vinatzer B A. Construction and characterization of a bacterial artificial chromosome library of apple [J].Theor Appl Genet, 1998, 97:1 183-1 190.
[45]
Morizot D C, Mcentire B B, Dellacoletta L, et al.Mapping of tyrosine kinase gene family members in a Xiphophorus melanoma model [J]. Mol Careinog,1998, 22: 150-157.
[46]
Donovan A, Brownlie A, Zhou Y, et al. Positional cloning of zebrafish ferroportin 1 identifies a conserved vertebrate iron exporter [J]. Nature, 2000,402: 776-781.
[47]
Nechiporuk A, Poss, K D, Johnson, S L, etal. Positional cloning of a temperature- sensitive mutant emmental reveals a role for sly 1 during cell proliferation in zebrafish fin regeneration [J]. Developmental Biology,2003, 258(2): 291-306.
[48]
Moore G. Grasses line up and form a circle. Aligning male and female linkage map of apple (Malus pumila Mill) [J]. Current Biology, 1995, 5: 737-739.
[49]
Postlethwait J H, Yan Y L, Gate M A, et al. Vertebrate genome evolution and the zebrafish gene map[J]. Nature Genet, 1998, 18: 345-349.
[50]
Brenner S, Elgar G, Sandford R, et al. Characterization of the pufferfish (Fugu) genome as a compact model vertebrate genome [J]. Nature, 1993, 366:265-268.
[51]
Gilley J, Fried M. Extensive gene order differences within regions of conserved synteny between the Fugu and human genomes: implication from chromosomal evolution and the cloning of disease genes [J].Hum Mol Genet, 1999, 8:1 313-1 320.
[52]
Yamaguchi F, Yamaguchi K, Tokuda H, et al, Molecular cloning EDG-3 and N-Shc genes from the puffer fish, Fugu rubripes, and conservation of synteny with the human genome [J]. FEBS Letter,1999, 459: 105-110.
[53]
Elgar G, Sandford R, Aparicio S, et al. Small is beautiful: comparative genomics with the puffer fish (Fugurubripes) [J]. Trends Genet, 1996, 12:145-150.
[54]
Brunner B, Todt T, Lenzner S, et al. Genomic structure and comparative analysis of nine Fugu genes: conservation of synteny with human chromosome Xp22.2-p22.1 [J]. Genome Res, 1999, 9:437-448.
Page R D M. Treeview: An application to display phylogenetic trees on personal computers [J]. Comp Appi Biosei, 1996,12: 357- 358.
[57]
Schneider S, Kueffer J M, Roessli D, et al. A software for population genetic data analysis [M]. Switzerland: Genetics and Biometry Laboratory, University of Geneva, 1997.
[58]
Rice R W. Analyzing tables of statistical tests [J].Evolution, 1989, 43: 223-225.