Deconstructing isolation-by-distance: The genomic consequences of limited dispersal
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Nancy F. Chen | John W Fitzpatrick | Graham Coop | Andrew G Clark | Nancy Chen | A. Clark | G. Coop | J. Fitzpatrick | Stepfanie M. Aguillon | R. Bowman | S. Schoech | Reed Bowman | Stepfanie M Aguillon | Stephan J Schoech | A. Clark | A. Clark | S. Aguillon
[1] W. Amos,et al. Dispersal, philopatry and intergroup relatedness: fine‐scale genetic structure in the white‐breasted thrasher, Ramphocinclus brachyurus , 2006, Molecular ecology.
[2] F. Burel,et al. Dispersal and genetic structure in the American marten, Martes americana , 2006, Molecular ecology.
[3] P H Harvey,et al. THE NATAL AND BREEDING DISPERSAL OF BIRDS , 1982 .
[4] N Mantel,et al. A technique of nonparametric multivariate analysis. , 1970, Biometrics.
[5] P. Greenwood. Mating systems, philopatry and dispersal in birds and mammals , 1980, Animal Behaviour.
[6] P. Meirmans,et al. The trouble with isolation by distance , 2012, Molecular ecology.
[7] O. Hardy,et al. New insights from fine‐scale spatial genetic structure analyses in plant populations , 2004, Molecular ecology.
[8] G. Luikart,et al. Measuring individual inbreeding in the age of genomics: marker-based measures are better than pedigrees , 2015, Heredity.
[9] F. Prugnolle,et al. Inferring sex-biased dispersal from population genetic tools: a review , 2002, Heredity.
[10] Scott M. Williams,et al. The Great Migration and African-American Genomic Diversity , 2015, bioRxiv.
[11] Aurélie Coulon,et al. Effects of Habitat Fragmentation on Effective Dispersal of Florida Scrub‐Jays , 2010, Conservation biology : the journal of the Society for Conservation Biology.
[12] B. Kempenaers,et al. A spatial genetic structure and effects of relatedness on mate choice in a wild bird population , 2006, Molecular ecology.
[13] Pierre Legendre,et al. Is the Mantel correlogram powerful enough to be useful in ecological analysis? A simulation study. , 2012, Ecology.
[14] Rousset. Genetic differentiation between individuals , 1999 .
[15] P. Visscher,et al. GCTA: a tool for genome-wide complex trait analysis. , 2011, American journal of human genetics.
[16] B. Charlesworth. Effective population size and patterns of molecular evolution and variation , 2009, Nature Reviews Genetics.
[17] Armando Caballero,et al. Developments in the prediction of effective population size , 1994, Heredity.
[18] F Rousset,et al. Equilibrium values of measures of population subdivision for stepwise mutation processes. , 1996, Genetics.
[19] E. Petit,et al. Molecular Estimation of Dispersal for Ecology and Population Genetics , 2009 .
[20] T. Nagylaki. Dispersion-selection balance in localised plant populations1 , 1976, Heredity.
[21] G. Coop,et al. Inferring Recent Demography from Isolation by Distance of Long Shared Sequence Blocks , 2016, Genetics.
[22] Montgomery Slatkin,et al. Modern developments in theoretical population genetics : the legacy of Gustave Malécot , 2002 .
[23] Montgomery Slatkin,et al. Gene Flow in Natural Populations , 1985 .
[24] F. Rousset,et al. Compatible genetic and ecological estimates of dispersal rates in insect (Coenagrion mercuriale: Odonata: Zygoptera) populations: analysis of ‘neighbourhood size’ using a more precise estimator , 2006, Molecular ecology.
[25] Montgomery Slatkin,et al. ISOLATION BY DISTANCE IN EQUILIBRIUM AND NON‐EQUILIBRIUM POPULATIONS , 1993, Evolution; international journal of organic evolution.
[26] D. H. Vuren,et al. Detectability, philopatry, and the distribution of dispersal distances in vertebrates. , 1996, Trends in ecology & evolution.
[27] J. Goudet,et al. Tests for sex‐biased dispersal using bi‐parentally inherited genetic markers , 2002, Molecular ecology.
[28] A. Badyaev,et al. Coupling of dispersal and aggression facilitates the rapid range expansion of a passerine bird , 2007, Proceedings of the National Academy of Sciences.
[29] B. Epperson. Estimating dispersal from short distance spatial autocorrelation , 2005, Heredity.
[30] T. Maruyama. Analysis of population structure: II. Two‐dimensional stepping sone models of finite length and other geographically structured populations * , 1971 .
[31] F. Dobson,et al. Competition for mates and predominant juvenile male dispersal in mammals , 1982, Animal Behaviour.
[32] G. Malécot,et al. Les mathématiques de l'hérédité , 1948 .
[33] J. Hutchings,et al. Dispersal in a stream dwelling salmonid: Inferences from tagging and microsatellite studies , 2004, Conservation Genetics.
[34] F. Rousset,et al. ‘Neighbourhood’ size, dispersal and density estimates in the prickly forest skink (Gnypetoscincus queenslandiae) using individual genetic and demographic methods , 2001, Molecular ecology.
[35] P. Balaresque,et al. Sex-Specific Genetic Structure and Social Organization in Central Asia: Insights from a Multi-Locus Study , 2008, PLoS genetics.
[36] S. Wright,et al. Isolation by Distance. , 1943, Genetics.
[37] S. Wright. Isolation by Distance under Diverse Systems of Mating. , 1946, Genetics.
[38] F. Rousset. Genetic differentiation and estimation of gene flow from F-statistics under isolation by distance. , 1997, Genetics.
[39] S. Schoech,et al. Reproductive endocrinology and mechanisms of breeding inhibition in cooperatively breeding Florida Scrub Jays Aphelocoma C. coerulescens) , 1991 .
[40] Stephen R. Baillie,et al. Patterns of natal and breeding dispersal in birds , 1998 .
[41] J. Merilä,et al. Genetic evidence for male‐biased dispersal in the Siberian jay (Perisoreus infaustus) based on autosomal and Z‐chromosomal markers , 2010, Molecular ecology.
[42] Nancy F. Chen,et al. Genomic Consequences of Population Decline in the Endangered Florida Scrub-Jay , 2016, Current Biology.
[43] G. E. Woolfenden,et al. Florida Scrub-Jay (Aphelocoma coerulescens) , 1996 .
[44] G. Leighton,et al. Population genomics of Sociable Weavers Philetairus socius reveals considerable admixture among colonies , 2015, Journal of Ornithology.
[45] Stephen F. Schaffner,et al. The X chromosome in population genetics , 2004, Nature Reviews Genetics.
[46] M. Robbins,et al. Fine-scale genetic structure analyses suggest further male than female dispersal in mountain gorillas , 2014, BMC Ecology.
[47] G Malécot,et al. Heterozygosity and relationship in regularly subdivided populations. , 1975, Theoretical population biology.
[48] T. Nagylaki. Gustave Malécot and the transition from classical to modern population genetics. , 1989, Genetics.
[49] Manuel A. R. Ferreira,et al. PLINK: a tool set for whole-genome association and population-based linkage analyses. , 2007, American journal of human genetics.
[50] Luis Mauricio Bini,et al. Mantel test in population genetics , 2013, Genetics and molecular biology.
[51] R. Mumme. Do helpers increase reproductive success? , 1992, Behavioral Ecology and Sociobiology.
[52] Glen E. Woolfenden,et al. The Florida scrub jay : demography of a cooperative-breeding bird , 1986 .
[53] B. Hatchwell,et al. Fine‐scale genetic structure reflects sex‐specific dispersal strategies in a population of sociable weavers (Philetairus socius) , 2015, Molecular ecology.
[54] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[55] William E. Stutz,et al. Partitioning the effects of isolation by distance, environment, and physical barriers on genomic divergence between parapatric threespine stickleback , 2017, Evolution; international journal of organic evolution.
[56] M. Kimura,et al. The Stepping Stone Model of Population Structure and the Decrease of Genetic Correlation with Distance. , 1964, Genetics.
[57] Bradley C Fedy,et al. Genetic and ecological data provide incongruent interpretations of population structure and dispersal in naturally subdivided populations of white‐tailed ptarmigan (Lagopus leucura) , 2008, Molecular ecology.
[58] J. Bossart,et al. Genetic estimates of population structure and gene flow: Limitations, lessons and new directions. , 1998, Trends in ecology & evolution.
[59] Y. Ishida,et al. Sewall Wright and Gustave Malécot on Isolation by Distance , 2009, Philosophy of Science.
[60] G. Malécot,et al. Génétique des populations diploïdes naturelles dans le cas d'un seul locus. III. – Parenté, mutations et migration , 1973, Annales de génétique et de sélection animale.
[61] J. Slate,et al. FINE‐SCALE GENETIC STRUCTURE IN A WILD BIRD POPULATION: THE ROLE OF LIMITED DISPERSAL AND ENVIRONMENTALLY BASED SELECTION AS CAUSAL FACTORS , 2013, Evolution; international journal of organic evolution.
[62] L. Boitani,et al. Fine-scale population genetic structure and short-range sex-biased dispersal in a solitary carnivore, Lutra lutra , 2013 .
[63] N. Mantel. The detection of disease clustering and a generalized regression approach. , 1967, Cancer research.
[64] L. Excoffier,et al. Genetic Consequences of Range Expansions , 2009 .
[65] J. Fitzpatrick,et al. Mind the gap: genetic distance increases with habitat gap size in Florida scrub jays , 2012, Biology Letters.
[66] Brian L Browning,et al. Identity by descent between distant relatives: detection and applications. , 2012, Annual review of genetics.
[67] Peter L. Ralph,et al. The Geography of Recent Genetic Ancestry across Europe , 2012, PLoS biology.