Genetic neighbourhood and effective population size for two endangered frogs

Biological Conservation - Tập 88 - Trang 221-229 - 1999
Don A. Driscoll1
1Department of Zoology, University of Western Australia, Nedlands, Perth, WA 6907, Australia

Tài liệu tham khảo

Allendorf, F.W., Leary, R.F., 1986. Heterozygosity and fitness in natural populations of animals. In: Soule, M.E. (Ed.), Conservation Biology. The Science of Scarcity and Diversity. Sinauer Associates, Sunderland, MA, pp. 19–34. Begon, 1977, The effective size of a natural Drosophila subobscura population, Heredity, 38, 13, 10.1038/hdy.1977.2 Begon, 1980, The genetics of Drosophila subobscura populations XV. Effective size of a natural population estimated by three independent methods, Heredity, 45, 335, 10.1038/hdy.1980.76 Berven, 1990, Dispersal in the wood frog (Rana sylvatica): implications for genetic population structure, Evolution, 44, 2047, 10.2307/2409614 Caballero, 1994, Developments in the prediction of effective population size, Heredity, 73, 657, 10.1038/hdy.1994.174 Crawford, T.J., 1984. What is a population? In: Shorrocks, B. (Ed.), Evolutionary Ecology. 23rd Symposium of the British Ecological Society. Leeds 1982. Blackwell Scientific, Oxford, pp. 135–173. Crow, J.F., Kimura, M., 1970. An Introduction to Population Genetics Theory. Harper and Row, New York. Driscoll, D.A., 1996. Understanding the metapopulation structure of frogs in the Geocrinia rosea complex through population genetics and population biology: implications for conservation and evolution. Unpublished Ph.D. thesis, University of Western Australia, Perth. Driscoll, 1997, Mobility and metapopulation structure of Geocrinia alba and G. vitellina, two endangered frog species from south-western Australia, Australian Journal of Ecology, 22, 185, 10.1111/j.1442-9993.1997.tb00658.x Driscoll, 1998, Genetic structure, metapopulation processes and evolution influence the conservation strategies for two endangered frog species, Biological Conservation, 83, 43, 10.1016/S0006-3207(97)00045-1 Driscoll, D.A., 1998b. Genetic structure of the frogs Geocrinia lutea and G. rosea reflects extreme population divergence and range changes, not dispersal barriers. Evolution 52, 1147–1157. Duellman, W.E., Trueb, L., 1986. Biology of Amphibians. McGraw-Hill, New York. Frankel, O.H., Soulé, M.E., 1981. Conservation and Evolution. Cambridge University Press, Cambridge. Frankham, 1995, Effective population size/adult population size ratios in wildlife: a review, Genetical Research, 66, 95, 10.1017/S0016672300034455 Hill, 1972, Effective size of populations with overlapping generations, Theoretical Population Biology, 3, 278, 10.1016/0040-5809(72)90004-4 Hill, 1979, A note on effective population size with overlapping generations, Genetics, 92, 317, 10.1093/genetics/92.1.317 Humphries, R.B., 1979. Dynamics of a breeding frog community. Ph.D. thesis, Australian National University, Canberra. Husband, 1992, Effective population size and genetic drift in tristylous Eichhornia paniculata (Pontederiaceae), Evolution, 46, 1875, 10.2307/2410037 Jameson, 1955, The population dynamics of the cliff frog, Syrrhophus marnocki, American Midland Naturalist, 54, 342, 10.2307/2422572 Kimura, 1963, The measurement of effective population number, Evolution, 17, 279, 10.2307/2406157 Lacy, 1987, Loss of genetic diversity from managed populations: interacting effects of drift, mutation, immigration, selection and population subdivision, Conservation Biology, 1, 143, 10.1111/j.1523-1739.1987.tb00023.x Lande, 1994, Risk of population extinction from fixation of new deleterious mutations, Evolution, 48, 1460, 10.2307/2410240 Lande, R., Barrowclough, G.F., 1987. Effective population size, genetic variation and their use in population management. In: Soulé, M.E. (Ed.), Viable Populations for Conservation. Cambridge University Press, Cambridge, pp. 87–123. Lemckert, 1993, Costs of reproduction in a population of the frog Crinia signifera (Anura: Myobatrachidae) from southeastern Australia, Journal of Herpetology, 27, 420, 10.2307/1564830 Lynch, 1995, Mutation accumulation and the extinction of small populations, American Naturalist, 146, 489, 10.1086/285812 Lynch, 1990, Mutation load and the survival of small populations, Evolution, 44, 1725, 10.2307/2409502 Newman, 1997, Increased probability of extinction due to decreased genetic effective population size: experimental populations of Clarkia pulchella, Evolution, 51, 354, 10.2307/2411107 Nunney, 1991, The influence of age structure and fecundity on effective population size, Proceedings of the Royal Society of London Series B, 246, 71, 10.1098/rspb.1991.0126 Nunney, 1993, The influence of mating system and overlapping generations on effective population size, Evolution, 47, 1329, 10.2307/2410151 Nunney, 1995, Measuring the ratio of effective population size to adult numbers using genetic and ecological data, Evolution, 49, 389, 10.2307/2410351 Nunney, 1994, Estimating the effective population size of conserved populations, Conservation Biology, 8, 175, 10.1046/j.1523-1739.1994.08010175.x Reed, 1993, Effective population size in red-cockaded woodpeckers: population and model differences, Conservation Biology, 7, 302, 10.1046/j.1523-1739.1993.07020302.x Rich, 1979, Genetic drift in small populations of Tribolium, Evolution, 33, 579, 10.2307/2407781 Roberts, 1990, Extended descriptions of Geocrinia vitellina and Geocrinia alba (Anura: Myobatrachidae) from south-western Australia, with comments on the status of G. lutea, Records of the Western Australian Museum, 14, 427 Saccheri, 1998, Inbreeding and extinction in a butterfly metapopulation, Nature, 392, 491, 10.1038/33136 Townsend, 1994, Reproductive ecology of the Puerto Rican frog Eleutherodactylus coqui, Journal of Herpetology, 28, 34, 10.2307/1564677 Vrijenhoek, R.C., 1989. Population genetics and conservation. In: Western, D., Pearl, M.C. (Eds.), Conservation for the Twenty First Century. Oxford University Press, Oxford, pp. 89–98. Waite, 1996, Dimensionless life histories and effective population size, Conservation Biology, 10, 1456, 10.1046/j.1523-1739.1996.10051456.x Waples, 1990, Conservation genetics of pacific salmon II. Effective population size and rate of loss of genetic variability, Heredity, 81, 267, 10.1093/oxfordjournals.jhered.a110989 Wardell-Johnson, G., Roberts, J.D., 1991. The survival status of the Geocrinia rosea (Anura:Myobatrachidae) complex in riparian corridors: biogeographical implications. In: Saunders, D.A., Hobbs, R.J. (Eds.), Nature Conservation 2. The Role of Corridors. Surrey Beatty and Sons, Chipping Norton, NSW, pp. 167–175. Wardell-Johnson, 1993, Biogeographic barriers in a subdued landscape: the distribution of the Geocrinia rosea (Anura: Myobatrachidae) complex in south western Australia, Journal of Biogeography, 20, 95, 10.2307/2845743 Wells, 1980, Behavioral ecology and social organization of a dendrobatid frog (Colostethus inguinalis), Behavioral Ecology and Sociobiology, 6, 199, 10.1007/BF00569201 Wright, 1931, Evolution in Mendelian populations, Genetics, 16, 97, 10.1093/genetics/16.2.97 Wright, 1943, Isolation by distance, Genetics, 28, 114, 10.1093/genetics/28.2.114 Wright, 1946, Isolation by distance under diverse systems of mating, Genetics, 31, 39, 10.1093/genetics/31.1.39 Wright, 1948, On the roles of directed and random changes in gene frequency in the genetics of populations, Evolution, 2, 279, 10.2307/2405519 Wright, S., 1969. Evolution and the Genetics of Populations, Vol. II. The Theory of Gene Frequencies. University of Chicago Press, Chicago, IL.