鱼类线粒体DNA的遗传与进化
GENETICS AND EVOLUTION OF MITOCHONDRIAL DNA IN FISH
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[1] Chang Y-S, F.-L. Huang, T.-B. Lo, The complete nucleotide sequences and gene organization of carp (Cypr inus carpio) mitochondrial genome. [J]. J. Mol. Evol., 1994. 38:138-155[2] Tzeng G-S. C.-F. Hui, S,-C. Shen and P. C. Huang, The complete nucleotide sequence of theCrossostome lacustre mitochondrial enome: conservation and variations among vertebrates [J]. Nucleic AcidsRes. 1992. 20:4853-4858[3] Zardoya R A, Garrido-Pertierra, Bautista, J. M. The complete nucleotide sequence of the mitochondrialDNA genome of the Rainbow trout. Oncorhynchus mykiss. 1995. J. Mol. Evol. 41:942-951[4] Zardoya R., Meyer. A. The complete nucleotide sequence of the mitochondrial genome of the lungfish (Protopterus dolloi) supports its phylogenetic position as a close relative of land vertebrates. Genetics1996. 142:1249-1263[5] Noack K, Zardoya, R. meyer. Axel The complete mitochondrial DNA sequence of the Bichir (Polypterus ornatipinnis), a basal ray-finned fish: ancient establishment of the consensus vertebrate gene order.Genetics 1996. 144:1165-1180[6] Lee W J, Kocher. T D. Complete sequence of a sea Lamprey (Petromyzoa marinus) mitochondrial genome:Early establishment of the vertebrate genome organization. Genetics 1995. 139:873-887[7] Zardoya R., Meyer. A. The complete DNA sequence of the mitochondrial genome of a "living fossil”, theCoelacanth (Latineria chalumnae). Genetics, 1997. 146:995-1010[8] Grewe P M, Krueger, C. C. Aquadro, C. F. et al. Mitochondrial DNA variation among Lake trout(Salvelinus namaycush) strains stocked into Lake Ontario. Can. J. Fish. Aquat. Sci., 1993. 50:2397-2403[9] Stabile J, Waldman, J. R Parauka, F. et al Stock structure and homing fidelity in Gulf of Mexico sturgeon(Acipenser oxyrinchus desotoi) based on restriction fragment length polymorphism and sequence analysis of mitochondrial DNA. Genetics, 1995. 144:767-775[10] Palva T., Heilkkilenvaslaiho, Palva. E. T. Identification of Anadromous and non-anadromous Salmon stocks in Finland by mitochondrial DNA analysis. Aquaculture 1989. 81:237-244[11] Birt T P, Green, J. M. Davison. W. S. Mitochondrial DNA variation reveals genetically distinct sympatricpopulations of anadromous and nonanadromous Atlantic salmon, Salmo salar. Can. J. Fish. Aquat. Sci.,1991. 48:577-582[12] Rognon X, Guyomard. R. Mitochondrial DNA differentiation among East and West tilapia populations. J.Fish. Biol., 1997. 51:204-207[13] Avise, J, C., Helfman, G, S. Saunders, N C. et al. Mitochondrial DNA differentiation in North Atlantic eels: population genetic consequences of an unusual life history pattern. Proc. Natl. Acad. Sci. US41986. 83:4350-4354[14] Bartlett S E, Davidson. W S. Identification of Thunnus Tuna species by the polymerase chain reaction and direct sequences analysis of their mitochondrial Cytochrome b genes. Can. J. Fish. Aquat Sci., 1991. 48:309-317[15] Kornfield I., Kircheis. F W Mito ondrial DNA and conservation of an aborginal Arctic char (Salvelinus alpinus oquassa) from floods pond, Maine. Can. J. Fish. Aquat Sci., 1994. 51:62-67[16] Ong T Stabile, L, J. Wirgin, I. et al Genetic divergence between Acipenser oxyrinchus oxyrinchus and A O. desotei as assessed by mitochondrial DNA sequencing analysis. Copeia 1996. (2):464-469[17] Bermingham E., Avise. J. C. Molecular zoogeography of freshwater fishes in the Southeastern United States.Genetics, 1986. 113:939-965[18] Avise J C., Arnold, J. Ball, R, M. et al. Intraspecific phylogeography: the mitochondrial DNA bridge between population genetics and systematics. Ann. Rev. Ecol. Syst., 1987. 18:489-522[19] Birt T P., Green, J. M. Davidson. W. S. Analysis of mitochondrial DNA in allopatric anadromous and nonanadromous Atlantic salmon, Salmo salar. Can. J. Zool., 1986. 64:118-120[20] Taylor E B, Foote, C J. Wood. C, C. Molecular genetic evidence for parallel life-history evolution within a Pacific salmon (Sockeye salmon and kokanee), Oncorhynchus nerka. Evolution, 1996. 50(1):401-416[21] Echelle A A, Dowling, T E. Moritz, C. C. Mitichondrial DNA diversity and the origin of the Menidia clarkhubbsi complex of unisexual fishes (Atherinidae). Evolution, 1989. 43(4):984-993[22] Pigeon D, Chouinard, A. Bematchez. L. Multiple modes of speciation involved in the parallel evolution of sympatric morphotypes of lake whitefish (Coregonus clupeaformis, Salmonidae). Evolution, 1997. 51(1): 196-205[23] Wilson G M, Thomas, W. K. Beckenbach. A. T. Intra-and inter-specific mitochondrial DNA sequences divergence in salmo: rainbow, steelhead, and cutthroat trouts. Can J. Zool., 1985. 63:2088-2094[24] Thomas W K, et al. Mitochondrial DNA analysis of Pacific salmonid evolution. Can J. Zool., 1986. 64:1058-1064[25] Ovenden J R., White, R W G. Sanger. A. C Evolutionary relationships of Gadopsis spp. inferred from restriction enzyme analysis of their mitochondrial DNA. J. Fish. Biol., 1988. 32:137-148[26] Dowing T E, Brown. W M Allozymes, mitochondrial DNA, and levels of phylogenetic resolution among four minnow species (Notropis: Cyprinidae). Sys. Zool, 1989. 38(2): 126-143[27] Iwin D W., Kocher, T. D. Wilson. A C Evolution of the cytochrome b gene of mammals. J.Mol. Evol.1991. 32:128-144[28] Mcveigh H P, Davidson. W S. A salmonid phylogeny inferred from mitochondrial cytochrome b gene sequences. J. Fish. Biol., 1991. 39(supplement A):277-282[29] Lockwood S, Dillinger Jr., F., R. E. Birt, T. P. et al. Phylogenetic relationships among members of the Coregoninae inferred from direct sequencing of PCR-amplified mitochondrial DNA. Can. J. Fish. Aquat.Sci., 1993. 50:2112-2118[30] Cantatore P, Roberti, M. Pesole, G. et al. Evolutionary analysis of cytochrome b seqnce in some Perciformes: Evidence for a slower rate of evolution than in mammals. J. Mol. Evol. 1994. 39:589-597[31] Lydeard C., Wooten, M. C. Meyer. A. Cytochrome b sequence variation and a molecular phylogeny of the live-bearing fish genus Gambusia (Cyprinodontiformes: Poeeiliidae). Can. J. Zool., 1994. 73:213-227[32] Mojica C L., Meyer, A. Barlow G. W. Phylogenetic relationships of species of the genus Brachyrhaphis(Poeciliidae) inferred from partial mitochondrial DNA sequences. Copeia, 1997. (2):298-305[33] Zardoya R. Meyer. A. Phylogenetic Performance of mitochondrial protein-coding genes in resolving relationships among vertebrates. Mol. Biol. Evol., 1996. 13(7):933-942[34] Lee W J. Conroy, J. Howell, W H et al. Structure and evolution of teleost mitochondrial control regions.J. Mol. Evol., 1995. 41:54-66[35] Lockhart P J, Penny, D. Meyer. A. Testing the phylogeny of swordtail fishes using decomposition andspectral analysis. J. Mol. Evol., 1995. 41:666-674[36] Thomas W K, Beckenbach. A. T. Variation in salmonid mitochondrial DNA: evolutionary constrains and mechanisms of substitution. J. Mol. Evol., 1989. 29:233-245[37] Meyer A., Kocher, T. D. basasibwaki P. et al. Monophyletic origin of Lake Victoria cichlid fishes suggested by mitochondrial DNA sequence. Nature 1990. 347:550-553[38] Normark B B., Mccune, A. R. Harrison. R. G. Phylogenetic relationships of Neopterygian fishes, inferred from mit chondrial DNA sequences. Mol. Biol. Evol., 1991. 8(6):819-834
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