Variation in salinity tolerance between and within anadromous subpopulations of pike (Esox lucius)
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[1] B. Walsh,et al. Evolutionary Quantitative Genetics , 2019, Handbook of Statistical Genomics.
[2] Yuanying Chen,et al. Rapid evolution of piRNA clusters in the Drosophila melanogaster ovary , 2023, bioRxiv.
[3] A. Forsman,et al. Can spatial sorting associated with spawning migration explain evolution of body size and vertebral number in Anguilla eels? , 2016, Ecology and evolution.
[4] P. Larsson,et al. To What Extent Can Existing Research Help Project Climate Change Impacts on Biodiversity in Aquatic Environments? A Review of Methodological Approaches , 2016 .
[5] Adam J. Sepulveda,et al. Potential of Environmental DNA to Evaluate Northern Pike (Esox lucius) Eradication Efforts: An Experimental Test and Case Study , 2016, PloS one.
[6] A. Forsman,et al. Inter-individual variation promotes ecological success of populations and species: evidence from experimental and comparative studies , 2016 .
[7] Sean M. Ehlman,et al. Dealing with stochastic environmental variation in space and time: bet hedging by generalist, specialist, and diversified strategies , 2016, Theoretical Ecology.
[8] P. Larsson,et al. Causes and consequences of intra-specific variation in vertebral number , 2016, Scientific Reports.
[9] P. Larsson,et al. Testing for Local Adaptation to Spawning Habitat in Sympatric Subpopulations of Pike by Reciprocal Translocation of Embryos , 2016, PloS one.
[10] P. Larsson,et al. Pike Esox lucius as an emerging model organism for studies in ecology and evolutionary biology: a review , 2015, Journal of fish biology.
[11] P. Larsson,et al. Ecology, evolution, and management strategies of northern pike populations in the Baltic Sea , 2015, AMBIO.
[12] P. Johannessen,et al. Evolutionary Divergence of Adult Body Size and Juvenile Growth in Sympatric Subpopulations of a Top Predator in Aquatic Ecosystems , 2015, The American Naturalist.
[13] A Forsman,et al. Rethinking phenotypic plasticity and its consequences for individuals, populations and species , 2014, Heredity.
[14] P. Larsson,et al. Elemental fingerprinting in otoliths reveals natal homing of anadromous Baltic Sea pike (Esox lucius L.) , 2014 .
[15] J. Merilä,et al. Local adaptation to salinity in the three‐spined stickleback? , 2014, Journal of evolutionary biology.
[16] A. Forsman. Effects of genotypic and phenotypic variation on establishment are important for conservation, invasion, and infection biology , 2013, Proceedings of the National Academy of Sciences.
[17] A. Forsman,et al. Population‐level consequences of polymorphism, plasticity and randomized phenotype switching: a review of predictions , 2012, Biological reviews of the Cambridge Philosophical Society.
[18] B. Wake. Modelling: Climate and Baltic Sea nutrients , 2012 .
[19] P. Larsson,et al. Effects of salinity on growth and mortality of migratory and resident forms of Eurasian perch in the Baltic Sea , 2012 .
[20] M. Karlsson,et al. RAPID EVOLUTION OF FIRE MELANISM IN REPLICATED POPULATIONS OF PYGMY GRASSHOPPERS , 2011, Evolution; international journal of organic evolution.
[21] M. Swartz. A decade later. , 2011, Journal of pediatric health care : official publication of National Association of Pediatric Nurse Associates & Practitioners.
[22] D. Bekkevold,et al. High salinity tolerance in eggs and fry of a brackish Esox lucius population , 2010 .
[23] Georg Martin,et al. Status of Biodiversity in the Baltic Sea , 2010, PloS one.
[24] P. Larsson,et al. Assessment of natal origin of pike (Esox lucius) in the Baltic Sea using Sr:Ca in otoliths , 2010, Environmental Biology of Fishes.
[25] T. Neumann. Climate-change effects on the Baltic Sea ecosystem: A model study , 2010 .
[26] G. Bell. Fluctuating selection: the perpetual renewal of adaptation in variable environments , 2010, Philosophical Transactions of the Royal Society B: Biological Sciences.
[27] P. Leberg,et al. Life history variation along a salinity gradient in coastal marshes , 2009 .
[28] D. Bekkevold,et al. Disentangling the Effects of Evolutionary, Demographic, and Environmental Factors Influencing Genetic Structure of Natural Populations: Atlantic Herring as a Case Study , 2009, Evolution; international journal of organic evolution.
[29] Rainer Feistel,et al. Density and Absolute Salinity of the Baltic Sea 2006–2009 , 2009 .
[30] Mollie E. Brooks,et al. Generalized linear mixed models: a practical guide for ecology and evolution. , 2009, Trends in ecology & evolution.
[31] D. Simberloff. The Role of Propagule Pressure in Biological Invasions , 2009 .
[32] Volker Loeschcke,et al. Intraspecific variation in expression of candidate genes for osmoregulation, heme biosynthesis and stress resistance suggests local adaptation in European flounder (Platichthys flesus) , 2008, Heredity.
[33] Mark Vellend,et al. Ecological consequences of genetic diversity. , 2008, Ecology letters.
[34] J. Craig,et al. A short review of pike ecology , 2008, Hydrobiologia.
[35] P. Leberg,et al. Adaptation as a potential response to sea-level rise: a genetic basis for salinity tolerance in populations of a coastal marsh fish , 2008, Evolutionary applications.
[36] R. O’Hara,et al. Comparative studies of quantitative trait and neutral marker divergence: a meta‐analysis , 2008, Journal of evolutionary biology.
[37] A. Koed,et al. Short‐term salinity tolerance of northern pike, Esox lucius, fry, related to temperature and size , 2007 .
[38] C. Folke,et al. Human-induced Trophic Cascades and Ecological Regime Shifts in the Baltic Sea , 2007, Ecosystems.
[39] B. MacKenzie,et al. Impact of 21st century climate change on the Baltic Sea fish community and fisheries , 2007 .
[40] S. Wulff. SAS for Mixed Models , 2007 .
[41] A. Hoffmann,et al. Limits to the adaptive potential of small populations , 2006 .
[42] P. Gowaty. Developmental Plasticity and Evolution Mary Jane West-Eberhard , 2005, Animal Behaviour.
[43] Lauren Ancel Meyers,et al. Fighting change with change: adaptive variation in an uncertain world , 2002 .
[44] K. Limburg,et al. Newly discovered reproductive isolation reveals sympatric populations of Esox lucius in the Baltic , 2002 .
[45] G. Holloway,et al. Phenotypic Plasticity: Beyond Nature and Nurture , 2002, Heredity.
[46] H. Rundle,et al. Speciation in nature : the threespine stickleback model systems , 2002 .
[47] R. Kassen. The experimental evolution of specialists, generalists, and the maintenance of diversity , 2002 .
[48] G. Boeuf,et al. How should salinity influence fish growth? , 2001, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[49] R. Frankham,et al. HOW CLOSELY CORRELATED ARE MOLECULAR AND QUANTITATIVE MEASURES OF GENETIC VARIATION? A META‐ANALYSIS , 2001, Evolution; international journal of organic evolution.
[50] J. Taggart,et al. Development of new VNTR markers for pike and assessment of variability at di‐ and tetranucleotide repeat microsatellite loci , 1999 .
[51] A. Kapuscinski,et al. Historical analysis of genetic variation reveals low effective population size in a northern pike (Esox lucius) population. , 1997, Genetics.
[52] A. Kapuscinski,et al. Notes: Microsatellite DNA Markers Reveal New Levels of Genetic Variation in Northern Pike , 1996 .
[53] S. Ellner,et al. Role of Overlapping Generations in Maintaining Genetic Variation in a Fluctuating Environment , 1994, The American Naturalist.
[54] M. Gross. Salmon Breeding Behavior and Life History Evolution in Changing Environments , 1991 .
[55] A. Nissling,et al. Effects of salinity on spermatozoa motility, percentage of fertilized eggs and egg development of Baltic cod (Gadus morhua), and implications for cod stock fluctuations in the Baltic , 1991 .
[56] A. Raat. Synopsis of biological data on the Northern pike, Esox lucius Linnaeus, 1758 , 1989 .
[57] Susan Dumps,et al. A model study. , 1988, Nursing standard (Royal College of Nursing (Great Britain) : 1987).
[58] J. Endler. Geographic variation, speciation, and clines. , 1977, Monographs in population biology.
[59] M. Slatkin. Hedging one's evolutionary bets , 1974, Nature.
[60] R. Levins. Evolution in Changing Environments , 1968 .
[61] D. Bekkevold,et al. Pike (Esox lucius L.) on the edge: consistent individual movement patterns in transitional waters of the western Baltic , 2016, Hydrobiologia.
[62] P. Larsson,et al. Causes and consequences of repeatability, flexibility and individual fine-tuning of migratory timing in pike. , 2016, The Journal of animal ecology.
[63] P. Larsson,et al. Wetlands for northern pike (Esox lucius L.) recruitment in the Baltic Sea , 2013, Hydrobiologia.
[64] L. Tomanek. Environmental proteomics: changes in the proteome of marine organisms in response to environmental stress, pollutants, infection, symbiosis, and development. , 2011, Annual review of marine science.
[65] Masson-Delmotte,et al. The Physical Science Basis , 2007 .
[66] P. Hedrick. GENETIC POLYMORPHISM IN HETEROGENEOUS ENVIRONMENTS: A DECADE LATER , 1986 .
[67] Robert C. Wolpert,et al. A Review of the , 1985 .
[68] F. Holliday. 4 The Effects of Salinity on the Eggs and Larvae of Teleosts , 1969 .
[69] R. Levins. Evolution in Changing Environments: Some Theoretical Explorations. (MPB-2) , 1968 .
[70] G. A. Horridge,et al. Animal species and evolution. , 1964 .