Ecological components and evolution of selfing in the freshwater snail Galba truncatula
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[1] Andrew P. Robinson,et al. Randomization, Bootstrap and Monte Carlo Methods in Biology , 2007 .
[2] R. Jabbour‐Zahab,et al. Field and experimental evidence of preferential selfing in the freshwater mollusc Lymnaea truncatula (Gastropoda, Pulmonata) , 2004, Heredity.
[3] R. Petit,et al. High level of genetic differentiation for allelic richness among populations of the argan tree [Argania spinosa (L.) Skeels] endemic to Morocco , 1996, Theoretical and Applied Genetics.
[4] S. Jain,et al. Are inbreeders better colonizers? , 1981, Oecologia.
[5] J. Goudet,et al. EVOLUTIONARY IMPLICATIONS OF A HIGH SELFING RATE IN THE FRESHWATER SNAIL LYMNAEA TRUNCATULA , 2003, Evolution; international journal of organic evolution.
[6] Deborah Charlesworth,et al. Effects of inbreeding on the genetic diversity of populations. , 2003, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[7] M. Whitlock,et al. Estimating effective population size and migration rates from genetic samples over space and time. , 2003, Genetics.
[8] P. Ingvarsson. A METAPOPULATION PERSPECTIVE ON GENETIC DIVERSITY AND DIFFERENTIATION IN PARTIALLY SELF‐FERTILIZING PLANTS , 2002, Evolution; international journal of organic evolution.
[9] B. Charlesworth,et al. Effective population size and population subdivision in demographically structured populations. , 2002, Genetics.
[10] U. Dieckmann,et al. The evolution of self-fertilization in density-regulated populations , 2002, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[11] J. Dujardin,et al. How to succeed in parasitic life without sex? Asking Leishmania. , 2002, Trends in parasitology.
[12] J. Wang,et al. A pseudo-likelihood method for estimating effective population size from temporally spaced samples. , 2001, Genetical research.
[13] M. Benlemlih,et al. Influence of aestivation on the survival of Galba truncatula (Mollusca : Gasteropoda) populations according to altitude , 2001 .
[14] M. Meselson,et al. Rates of nucleotide substitution in sexual and anciently asexual rotifers , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[15] C. Tirard,et al. Lack of molluscan host diversity and the transmission of an emerging parasitic disease in Bolivia , 2001, Molecular ecology.
[16] C. Lively,et al. PARASITES AND THE EVOLUTION OF SELF‐FERTILIZATION , 2001, Evolution; international journal of organic evolution.
[17] P. Cheptou,et al. Can Varying Inbreeding Depression Select for Intermediary Selfing Rates? , 2001, The American Naturalist.
[18] J. Goudet. FSTAT, a program to estimate and test gene diversities and fixation indices (version 2.9.3). Updated from Goudet (1995) , 2001 .
[19] E. Thompson,et al. Monte Carlo evaluation of the likelihood for N(e) from temporally spaced samples. , 2000, Genetics.
[20] J. Goudet,et al. Microsatellites in the hermaphroditic snail, Lymnaea truncatula, intermediate host of the liver fluke, Fasciola hepatica , 2000, Molecular ecology.
[21] M. Kirkpatrick,et al. The Effects of a Bottleneck on Inbreeding Depression and the Genetic Load , 2000, The American Naturalist.
[22] M. Kirkpatrick,et al. Inbreeding depression due to mildly deleterious mutations in finite populations: size does matter. , 2000, Genetical research.
[23] M. Slatkin,et al. Using maximum likelihood to estimate population size from temporal changes in allele frequencies. , 1999, Genetics.
[24] R. Petit,et al. Identifying Populations for Conservation on the Basis of Genetic Markers , 1998 .
[25] Rong‐Cai Yang. ESTIMATING HIERARCHICAL F‐STATISTICS , 1998, Evolution; international journal of organic evolution.
[26] D. Minchella,et al. Parasite influences on host life history: Echinostoma revolutum parasitism of Lymnaea elodes snails , 1998, Oecologia.
[27] S. Barrett,et al. BAKER'S LAW REVISITED: REPRODUCTIVE ASSURANCE IN A METAPOPULATION , 1998, Evolution; international journal of organic evolution.
[28] F. Ayala. Is sex better? Parasites say "no". , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[29] A. W. Kemp,et al. Randomization, Bootstrap and Monte Carlo Methods in Biology , 1997 .
[30] C. Muñoz-Antolí,et al. SSU rDNA characterization of lymnaeid snails transmitting human fascioliasis in South and Central America. , 1997, The Journal of parasitology.
[31] B. Charlesworth,et al. The effects of local selection, balanced polymorphism and background selection on equilibrium patterns of genetic diversity in subdivided populations. , 1997, Genetical research.
[32] M. Lynch,et al. MUTATION AND EXTINCTION: THE ROLE OF VARIABLE MUTATIONAL EFFECTS, SYNERGISTIC EPISTASIS, BENEFICIAL MUTATIONS, AND DEGREE OF OUTCROSSING , 1997, Evolution; international journal of organic evolution.
[33] J. Ott. Genetic data analysis II , 1997 .
[34] M. Nordborg. Structured coalescent processes on different time scales. , 1997, Genetics.
[35] M. Whitlock,et al. The effective size of a subdivided population. , 1997, Genetics.
[36] S. Mas‐Coma,et al. Phylogeography and genetic divergence of some lymnaeid snails, intermediate hosts of human and animal fascioliasis with special reference to lymnaeids from the Bolivian Altiplano. , 1997, Acta tropica.
[37] F. Rousset. Genetic differentiation and estimation of gene flow from F-statistics under isolation by distance. , 1997, Genetics.
[38] C. Lively,et al. EVIDENCE FOR A COST OF SEX IN THE FRESHWATER SNAIL POTAMOPYRGUS ANTIPODARUM , 1997 .
[39] M Raymond,et al. Testing differentiation in diploid populations. , 1996, Genetics.
[40] W. G. Hill,et al. Genetic Data Analysis II . By Bruce S. Weir, Sunderland, Massachusetts. Sinauer Associates, Inc.445 pages. ISBN 0-87893-902-4. , 1996 .
[41] L. Hurst,et al. Recent advances in understanding of the evolution and maintenance of sex. , 1996, Trends in ecology & evolution.
[42] M. Lynch,et al. Mutation Accumulation and the Extinction of Small Populations , 1995, The American Naturalist.
[43] P. Jarne. Mating system, bottlenecks and genetic polymorphism in hermaphroditic animals , 1995 .
[44] J. Goudet. The genetics of geographically structured populations. , 1993 .
[45] H. Tachida,et al. Genetic variability and geographical structure in partially selfing populations , 1992 .
[46] D. Rondelaud,et al. Vertical spatial behaviour patterns of Lymnaea truncatula in relation with origin of snails, infection with Fasciola hepatica, and experimental environment , 1992 .
[47] M. Whitlock,et al. SOME POPULATION GENETIC CONSEQUENCES OF COLONY FORMATION AND EXTINCTION: GENETIC CORRELATIONS WITHIN FOUNDING GROUPS , 1990, Evolution; international journal of organic evolution.
[48] D. Rondelaud,et al. Natural watercress beds in the Limousin region. Some observations on the population dynamics of three lymnaeid species. , 1990 .
[49] R. Waples. A generalized approach for estimating effective population size from temporal changes in allele frequency. , 1989, Genetics.
[50] W. Rice. ANALYZING TABLES OF STATISTICAL TESTS , 1989, Evolution; international journal of organic evolution.
[51] M. Wade,et al. EXTINCTION AND RECOLONIZATION: THEIR EFFECTS ON THE GENETIC DIFFERENTIATION OF LOCAL POPULATIONS , 1988, Evolution; international journal of organic evolution.
[52] E. Pollak,et al. On the theory of partially inbreeding finite populations. I. Partial selfing. , 1988, Genetics.
[53] M. Nei. Molecular Evolutionary Genetics , 1987 .
[54] B. Weir,et al. ESTIMATING F‐STATISTICS FOR THE ANALYSIS OF POPULATION STRUCTURE , 1984, Evolution; international journal of organic evolution.
[55] E. Pollak. A new method for estimating the effective population size from allele frequency changes. , 1983, Genetics.
[56] M. Nei,et al. Genetic drift and estimation of effective population size. , 1981, Genetics.
[57] M. Slatkin. Gene flow and genetic drift in a species subject to frequent local extinctions. , 1977, Theoretical population biology.
[58] D. Rondelaud. L’évolution démographique de Lymnaea (Galba) truncatula Müller en Haute-Vienne. A propos de 4 années d’observations , 1977 .
[59] D. Rondelaud,et al. [About some observations on aestivation of Lymnaea (Galba) truncatula Müller non- or infested by Fasciola hepatica L. (author's transl)]. , 1975, Annales de parasitologie humaine et comparee.
[60] M. Ghiselin. The Evolution of Hermaphroditism Among Animals , 1969, The Quarterly Review of Biology.
[61] H. G. Baker. SUPPORT FOR BAKER'S LAW—AS A RULE , 1967, Evolution; international journal of organic evolution.
[62] J. Tomlinson,et al. The advantages of hermaphroditism and parthenogenesis. , 1966, Journal of theoretical biology.
[63] G. Stebbins. Self Fertilization and Population Variability in the Higher Plants , 1957, The American Naturalist.
[64] H. G. Baker,et al. SELF‐COMPATIBILITY AND ESTABLISHMENT AFTER ‘“LONG‐DISTANCE” DISPERSAL , 1955 .
[65] E. Roberts. Studies on the life-cycle of Fasciola hepatica (Linnaeus) and of its snail host, Limnaea (Galba) truncatula (Miller), in the field and under controlled conditions in the laboratory. , 1950, Annals of tropical medicine and parasitology.
[66] S. Kendall. Bionomics of Limnaea truncatula and the Parthenitae of Fasciola hepatica under Drought Conditions , 1949, Journal of Helminthology.
[67] Rory A. Fisher,et al. AVERAGE EXCESS AND AVERAGE EFFECT OF A GENE SUBSTITUTION , 1941 .
[68] W. T. THISELTON DYER,et al. The Effects of Cross- and Self-Fertilisation in the Vegetable Kingdom , 1877, Nature.
[69] Charles Darwin,et al. The Effects of Cross and Self Fertilisation in the Vegetable Kingdom , 1972 .