Natural mortality: Its ecology, how it shapes fish life histories, and why it may be increased by fishing☆
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[1] Richard Law,et al. Fishing, selection, and phenotypic evolution , 2000 .
[2] S. L. Lima,et al. Behavioral decisions made under the risk of predation: a review and prospectus , 1990 .
[3] J. Hutchings. Avoidance of fisheries-induced evolution: management implications for catch selectivity and limit reference points , 2009, Evolutionary applications.
[4] U. Dieckmann,et al. Eco-genetic modeling of contemporary life-history evolution. , 2009, Ecological applications : a publication of the Ecological Society of America.
[5] D. Conover,et al. EVOLUTION OF INTRINSIC GROWTH AND ENERGY ACQUISITION RATES. I. TRADE‐OFFS WITH SWIMMING PERFORMANCE IN MENIDIA MENIDIA , 2001, Evolution; international journal of organic evolution.
[6] K. Brander,et al. Expected rate of fisheries-induced evolution is slow , 2009, Proceedings of the National Academy of Sciences.
[7] A. Stoner,et al. Relationships between size-specific sediment preferences and burial capabilities in juveniles of two Alaska flatfishes , 2003 .
[8] A. F. Opdal. Fisheries change spawning ground distribution of northeast Arctic cod , 2010, Biology Letters.
[9] J. Hutchings. Influence of growth and survival costs of reproduction on Atlantic cod, Gadus morhua, population growth rate , 1999 .
[10] T. Hung. Life in Moving Fluids—The physical biology of flow , 1988 .
[11] S. Jennings,et al. Marine Fisheries Ecology , 2001 .
[12] J. Hartmann,et al. Human‐induced changes in the reproductive traits of Lake Constance common whitefish (Coregonus lavaretus) , 2009, Journal of evolutionary biology.
[13] C. Clark,et al. Towards a Unifield Foraging Theory , 1986 .
[14] R. Hilborn,et al. Directional selection by fisheries and the timing of sockeye salmon (Oncorhynchus nerka) migrations. , 2007, Ecological applications : a publication of the Ecological Society of America.
[15] Kaustuv Roy,et al. Ecological and evolutionary consequences of size‐selective harvesting: how much do we know? , 2008, Molecular ecology.
[16] Øyvind Fiksen,et al. State-dependent Energy Allocation in Cod (Gadus Morhua) , 2006 .
[17] Ø. Fiksen,et al. Modelling fishing-induced adaptations and consequences for natural mortality , 2010 .
[18] Christopher C. Wilmers,et al. Human predators outpace other agents of trait change in the wild , 2009, Proceedings of the National Academy of Sciences.
[19] Ian D Jonsen,et al. Assessing threats to species at risk using stage-structured state-space models: mortality trends in skate populations. , 2009, Ecological applications : a publication of the Ecological Society of America.
[20] J. Krebs,et al. An introduction to behavioural ecology , 1981 .
[21] W. E. Ricker,et al. Changes in the Average Size and Average Age of Pacific Salmon , 1981 .
[22] Julie E. Claussen,et al. Selection for Vulnerability to Angling in Largemouth Bass , 2009 .
[23] Ø. Fiksen,et al. Fisheries-Induced Evolution of Energy and Sex Allocation , 2008 .
[24] J. Wroblewski,et al. Mortality Rate of Fishes in the Pelagic Ecosystem , 1984 .
[25] J. Merilä,et al. Detecting and managing fisheries-induced evolution. , 2007, Trends in ecology & evolution.
[26] Raymond J. O'Connor,et al. Models of Adaptive Behaviour: An Approach Based on State. , 2001 .
[27] U. Dieckmann,et al. Ecology: Managing Evolving Fish Stocks , 2007, Science.
[28] R. Arlinghaus,et al. Life-history traits and energetic status in relation to vulnerability to angling in an experimentally selected teleost fish , 2009, Evolutionary applications.
[29] R. Gibson,et al. The relationship between body size, sediment grain size and the burying ability of juvenile plaice, Pleuronectes platessa L. , 1992 .
[30] J. Post,et al. Rapid depletion of genotypes with fast growth and bold personality traits from harvested fish populations , 2008, Proceedings of the National Academy of Sciences.
[31] J. Link,et al. The Feeding Ecology of Flatfish in the Northwest Atlantic , 2002 .
[32] A. Dawson,et al. Quantitative seasonal changes in the protein, lipid and energy content of the carcass, ovaries and liver of adult female plaice, Pleuronectes platessa L. , 1980 .
[33] George C. Williams,et al. Natural Selection, the Costs of Reproduction, and a Refinement of Lack's Principle , 1966, The American Naturalist.
[34] Simon Jennings,et al. Structural change in an exploited fish community: a consequence of differential fishing effects on species with contrasting life histories , 1999 .
[35] P. Abrams,et al. Interpreting the von Bertalanffy model of somatic growth in fishes: the cost of reproduction , 2004, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[36] U. Dieckmann,et al. The logic of skipped spawning in fish , 2006 .
[37] A. D. de Roos,et al. Stage-specific predator species help each other to persist while competing for a single prey , 2008, Proceedings of the National Academy of Sciences.
[38] R. Hilborn,et al. Evolutionary consequences of fishing and their implications for salmon , 2008, Evolutionary applications.
[39] D. Pauly. On the interrelationships between natural mortality, growth parameters, and mean environmental temperature in 175 fish stocks , 1980 .
[40] M. Castonguay,et al. Changes in the northern Gulf of St. Lawrence ecosystem estimated by inverse modelling: Evidence of a fishery-induced regime shift? , 2007 .
[41] G. Luikart,et al. Genetic effects of harvest on wild animal populations. , 2008, Trends in ecology & evolution.
[42] S. L. Lima. Predators and the breeding bird: behavioral and reproductive flexibility under the risk of predation , 2009, Biological reviews of the Cambridge Philosophical Society.
[43] R. Eckmann,et al. The influence of eutrophication and population biomass on common whitefish (Coregonus lavaretus) growth : the Lake Constance example revisited , 2007 .
[44] A. Rijnsdorp,et al. Changes in growth of North Sea plaice since 1950 in relation to density, eutrophication, beam-trawl effort, and temperature , 1996 .
[45] R. Law,et al. Evolution of yields from populations with age-specific cropping , 1989, Evolutionary Ecology.
[46] A. Houston,et al. The Common Currency for Behavioral Decisions , 1986, The American Naturalist.
[47] D. P. Swain,et al. Predicted extirpation of the dominant demersal fish in a large marine ecosystem: Atlantic cod (Gadus morhua) in the southern Gulf of St. Lawrence , 2008 .
[48] G. Hulata,et al. Genetic differences between the Chinese and European races of the common carp , 1975, Heredity.
[49] J. Hutchings. Life history consequences of overexploitation to population recovery in Northwest Atlantic cod (Gadus morhua) , 2005 .
[50] Derek A. Roff,et al. The evolution of life-history variation in fishes, with particular reference to flatfishes , 1991 .
[51] M. Heino,et al. Fisheries-Induced Selection Pressures in the Context of Sustainable Fisheries , 2002 .
[52] D. Conover,et al. EVOLUTION OF INTRINSIC GROWTH AND ENERGY ACQUISITION RATES. II. TRADE‐OFFS WITH VULNERABILITY TO PREDATION IN MENIDIA MENIDIA , 2001, Evolution; international journal of organic evolution.
[53] M. Heino,et al. Toward Darwinian fisheries management , 2009, Evolutionary applications.
[54] O. Fiksen,et al. The evolution of spawning migrations: state dependence and fishing-induced changes. , 2008, Ecology.
[55] A. Rijnsdorp,et al. Can bottom trawling disturbance increase food production for a commercial fish species , 2008 .
[56] Mikko Heino,et al. Fishing‐induced evolution of growth: concepts, mechanisms and the empirical evidence , 2012 .
[57] B. Howell,et al. The influence of sand on the estimation of resting metabolic rate of juvenile sole, Solea solea (L.) , 1987 .
[58] William H. Bossert,et al. Life Historical Consequences of Natural Selection , 1970, The American Naturalist.
[59] C. Quince,et al. Biphasic growth in fish I: theoretical foundations. , 2008, Journal of theoretical biology.
[60] C. Clark,et al. Dynamic State Variable Models in Ecology , 2000 .
[61] R. B. Miller. Have the Genetic Patterns of Fishes been Altered by Introductions or by Selective Fishing , 1957 .
[62] Ulf Dieckmann,et al. Life-history evolution in harvested populations: the role of natural predation , 2003 .
[63] R. E. Grift,et al. Marine Ecology Progress Series Mar Ecol Prog Ser , 2022 .
[64] Lennart Persson,et al. Culling Prey Promotes Predator Recovery — Alternative States in a Whole-Lake Experiment , 2022 .
[65] R. E. Grift,et al. Fisheries-induced adaptive change in reproductive investment in North Sea plaice (Pleuronectes platessa)? , 2005 .
[66] G. Hulata,et al. Genetic differences between the Chinese and European races of the common carp , 1975, Heredity.
[67] D. Duplisea,et al. Fishing under low productivity conditions is further delaying recovery of Northwest Atlantic cod (Gadus morhua) , 2006 .
[68] P. Wright,et al. Temporal and spatial variation in reproductive investment of Atlantic cod Gadus morhua in the northern North Sea and Scottish west coast , 2004 .
[69] P. Abrams. Adaptive changes in prey vulnerability shape the response of predator populations to mortality. , 2009, Journal of theoretical biology.
[70] D. Fraser,et al. The nature of fisheries‐ and farming‐induced evolution , 2008, Molecular ecology.
[71] U. Dieckmann,et al. Probabilistic maturation reaction norms: their history, strengths, and limitations , 2007 .
[72] J. Arendt,et al. Adaptive Intrinsic Growth Rates: An Integration Across Taxa , 1997, The Quarterly Review of Biology.
[73] C. Clark,et al. Diel Vertical Migrations by Juvenile Sockeye Salmon and the Antipredation Window , 1988, The American Naturalist.
[74] M. Mcgurk,et al. Natural mortality of marine pelagic fish eggs and larvae: role of spatial patchiness , 1986 .
[75] David N. Reznick,et al. Constraints on Adaptive Evolution: The Functional Trade‐Off between Reproduction and Fast‐Start Swimming Performance in the Trinidadian Guppy (Poecilia reticulata) , 2004, The American Naturalist.
[76] G. Wohlfarth,et al. Genetic differences between the Chinese and European races of the common carp , 1990, Theoretical and Applied Genetics.
[77] D. Conover,et al. Adaptive variation in energy acquisition and allocation among latitudinal populations of the Atlantic silverside , 2000, Oecologia.
[78] K. Andersen,et al. Asymptotic Size Determines Species Abundance in the Marine Size Spectrum , 2006, The American Naturalist.
[79] D. P. Swain,et al. Evolutionary response to size-selective mortality in an exploited fish population , 2007, Proceedings of the Royal Society B: Biological Sciences.
[80] D. Conover,et al. EVOLUTION OF INTRINSIC GROWTH AND ENERGY ACQUISITION RATES. II. TRADE-OFFS WITH VULNERABILITY TO PREDATION IN MENIDIA MENIDIA , 2001 .
[81] U. Dieckmann,et al. Implications of fisheries-induced evolution for stock rebuilding and recovery , 2009, Evolutionary applications.
[82] A. Hendry,et al. Life history change in commercially exploited fish stocks: an analysis of trends across studies , 2009, Evolutionary applications.
[83] Susumu Chiba,et al. EVOLUTION OF INTRINSIC GROWTH RATE: METABOLIC COSTS DRIVE TRADE‐OFFS BETWEEN GROWTH AND SWIMMING PERFORMANCE IN MENIDIA MENIDIA , 2006, Evolution; international journal of organic evolution.
[84] G. Bell,et al. A Gillnet Fishery Considered as an Experiment in Artificial Selection , 1977 .
[85] John G. Pope,et al. Size, growth, temperature and the natural mortality of marine fish , 2010 .
[86] Hiroyuki Matsuda,et al. The effect of adaptive change in the prey on the dynamics of an exploited predator population , 2005 .
[87] D. P. Swain. Life-history evolution and elevated natural mortality in a population of Atlantic cod (Gadus morhua) , 2010, Evolutionary applications.
[88] G. Breed,et al. Evaluating the potential for grey seal predation to explain elevated natural mortality in three fish species in the southern Gulf of St. Lawrence , 2011 .
[89] J. Rice,et al. Coexistence in North Sea fish communities: Implications for growth and natural mortality , 2008 .