84 Seehausen O. Hybridization and adaptive radiation. Trends Ecol Evol, 2004, 19: 198-207
[7]
85 Comai L. The advantages and disadvantages of being polyploidy. Nat Rev Genet, 2005, 6: 836-846
[8]
86 Chen Z J, Ni Z F. Mechanisms of genomic rearrangements and gene expression changes in plant polyploids. Bioessays, 2006, 28: 240-252
[9]
87 Song K, Lu P, Tang K, et al. Rapid genome change in synthetic polyploids of Brassica and its implications for polyploid evolution. Proc Natl Acad Sci USA, 1995, 92: 7719-7723
[10]
88 Kenton A, Parokonny A S, Gleba Y Y, et al. Characterization of the Nicotiana tabacum L. genome by molecular cytogenetics. Mol Gen Genet, 1993, 240: 159-169
[11]
89 Jellen E N, Gill B S, Cox T S. Genomic in situ hybridization differentiates between A/D-and C-genome chromatin and detects intergenomic translocations in polyploid oat species (genus Avena). Genome, 1994, 37: 613-618
97 Lu W T, Liu S J, Long Y, et al. Comparative study on the erythrocytes of the polyploidy hybrids from various fish subfamily crossings. Cell Tissue Res, 2009, 336: 159-163
4 Xiao J, Zou T M, Chen Y B, et al. Coexistence of diploid, triploid and tetraploid crucian carp (Carassius auratus) in natural waters. BMC Genet, 2011, 12: e20
[31]
5 Nolte A W, Freyhof J, Stemshorn K C, et al. An invasive lineage of sculpins, Cottus sp. (Pisces, Teleostei) in the Rhine with new habitat adaptations has originated from hybridization between old phylogeographic groups. Proc R Soc B-Biol Sci, 2005, 272: 2379-2387
[32]
6 Meyer A, Salzburger W, Schartl M. Hybrid origin of a swordtail species (Teleostei: Xiphophorus clemenciae) driven by sexual selection. Mol Ecol, 2006, 15: 721-730
[33]
7 Saitoh K, Chen W J, Mayden R L. Extensive hybridization and tetrapolyploidy in spined loach fish. Mol Phylogenet Evol, 2010, 56: 1001-1010
[34]
8 Grant P R, Grant B R, Petren K. Hybridization in the rencent past. Am Natt, 2005, 166: 56-57
[35]
9 Mallet J. Hybrid speciation. Nature, 2007, 446: 279-283
[36]
10 朱洗. 从受精过程讨论动物远缘杂交问题. 科学通报, 1961, 7: 1-7
[37]
11 Loeb J. The Fertilization of the Egg of the Sea-Urchin by the Sperm of the Starfish. Berkeley: The University Press, 1903
20 He W G, Xie L H, Li T L, et al. The formation of diploid and triploid hybrids of grass carp (♀) × blunt snout bream (♂) and their 5S rDNA analysis. BMC Genetics, 2013, 14: 110
35 Liu S J, Qin Q B, Xiao J, et al. The formation of the polyploid hybrids from different subfamily fish crossing and its evolutionary significance. Genetics, 2007, 176: 1023-1034
[62]
36 Hu J, Liu S J, Xiao J, et al. Characteristics of diploid and triploid hybrids derived from female Megalobrama amblycephala Yih×male Xenocypris davidi Bleeker. Aquaculture, 2012, 364-365: 157-164
41 Liu S J, Liu Y, Zhou G J, et al. The formation of tetraploid stocks of red crucian carp×common carp hybrids as an effect of interspecific hybridization. Aquaculture, 2001, 192: 171-186
75 Refstie T. Tetraploid rainbow trout produced by cytochalasin B. Aquaculture, 1981, 25: 51-58
[99]
76 Bidwell C A, Chfisman C L, Libey G. Polyploidy induced by heat shock in channel catfish. Aquaculture, 1985, 5: 25-32
[100]
77 Thorgaard G H, Jazwin M E, Stier A R. Polyploidy induced by heat shock in rainbow trout. T Am Fish Soc, 1981, 110: 546-550
[101]
78 Chourrout D, Chevassus B, Krieg F, et al. Production of second generation triploid and tetraploid rainbow trout by mating tetraploid males and diploid females—potential of tetraploid fish. Theor Appl Genet, 1986, 72: 193-206