Investment in boney defensive traits alters organismal stoichiometry and excretion in fish

[1]  Michael C. Marshall,et al.  Intraspecific phenotypic differences in fish affect ecosystem processes as much as bottom–up factors , 2015 .

[2]  A. Stier,et al.  Adaptive genetic variation mediates bottom-up and top-down control in an aquatic ecosystem , 2015, Proceedings of the Royal Society B: Biological Sciences.

[3]  M. Vanni,et al.  Ontogenetic variation in the body stoichiometry of two fish species , 2015, Oecologia.

[4]  K. Capps,et al.  Consumer‐driven nutrient dynamics in freshwater ecosystems: an introduction , 2015 .

[5]  Michael C. Marshall,et al.  Assessing the effects of guppy life history evolution on nutrient recycling: from experiments to the field , 2015 .

[6]  A. Flecker,et al.  Metabolic stoichiometry and the ecology of fear in Trinidadian guppies: consequences for life histories and stream ecosystems , 2014, Oecologia.

[7]  M. Tobler,et al.  Testing the ecological consequences of evolutionary change using elements , 2014, Ecology and evolution.

[8]  T. Kiørboe Zooplankton body composition , 2013 .

[9]  A. Douglas,et al.  Comparative digestive physiology. , 2013, Comprehensive Physiology.

[10]  T. Reimchen,et al.  Abrupt changes in defence and trophic morphology of the giant threespine stickleback (Gasterosteus sp.) following colonization of a vacant habitat , 2012 .

[11]  Michael C. Marshall,et al.  Direct and Indirect Ecosystem Effects of Evolutionary Adaptation in the Trinidadian Guppy (Poecilia reticulata) , 2012, The American Naturalist.

[12]  Michael C. Marshall,et al.  Widespread intraspecific organismal stoichiometry among populations of the Trinidadian guppy , 2012 .

[13]  W. Aguirre,et al.  Twenty years of body shape evolution in a threespine stickleback population adapting to a lake environment , 2012 .

[14]  Mridul K Thomas,et al.  Toward an integration of evolutionary biology and ecosystem science. , 2011, Ecology letters.

[15]  T. Schoener The Newest Synthesis: Understanding the Interplay of Evolutionary and Ecological Dynamics , 2011, Science.

[16]  J. Webster,et al.  Does diet influence consumer nutrient cycling? Macroinvertebrate and fish excretion in streams , 2010, Journal of the North American Benthological Society.

[17]  Ana F. Militino,et al.  Mixed Effects Models and Extensions in Ecology with R , 2010 .

[18]  P. Fink,et al.  To be or not to be what you eat: regulation of stoichiometric homeostasis among autotrophs and heterotrophs , 2010 .

[19]  D. Bolnick,et al.  Specialization of trophic position and habitat use by sticklebacks in an adaptive radiation. , 2010, Ecology.

[20]  Michael C. Marshall,et al.  Local adaptation in Trinidadian guppies alters ecosystem processes , 2010, Proceedings of the National Academy of Sciences.

[21]  D. Schluter,et al.  Environment Specific Pleiotropy Facilitates Divergence at the Ectodysplasin Locus in Threespine Stickleback , 2009, Evolution; international journal of organic evolution.

[22]  Jonathan M. Chase,et al.  Evolutionary diversification in stickleback affects ecosystem functioning , 2009, Nature.

[23]  Kerry B. Marchinko PREDATION'S ROLE IN REPEATED PHENOTYPIC AND GENETIC DIVERGENCE OF ARMOR IN THREESPINE STICKLEBACK , 2009, Evolution; international journal of organic evolution.

[24]  J. Losos Faculty Opinions recommendation of Natural selection on a major armor gene in threespine stickleback. , 2008 .

[25]  J. Hudson,et al.  General empirical models for predicting the release of nutrients by fish, with a comparison between detritivores and non-detritivores , 2008 .

[26]  M. Chadwick Stream Ecology: Structure and Function of Running Waters , 2008 .

[27]  R. Blust,et al.  Swimming capacity and energetics of migrating and non‐migrating morphs of three‐spined stickleback Gasterosteus aculeatus L. and their ecological implications , 2007 .

[28]  M. Vanni,et al.  Ontogeny, diet shifts, and nutrient stoichiometry in fish , 2007 .

[29]  M. Vanni,et al.  Fish extinctions alter nutrient recycling in tropical freshwaters , 2007, Proceedings of the National Academy of Sciences.

[30]  M. Vanni,et al.  Stoichiometry of nutrient excretion by fish: interspecific variation in a hypereutrophic lake , 2007 .

[31]  A. Flecker,et al.  Loss of a Harvested Fish Species Disrupts Carbon Flow in a Diverse Tropical River , 2006, Science.

[32]  Takehito Yoshida,et al.  Threshold elemental ratios of carbon and phosphorus in aquatic consumers. , 2006, Ecology letters.

[33]  David Griffiths The direct contribution of fish to lake phosphorus cycles , 2006 .

[34]  M. Vanni,et al.  Nutrient recycling by two phosphorus-rich grazing catfish: the potential for phosphorus-limitation of fish growth , 2005, Oecologia.

[35]  James H. Brown,et al.  The metabolic basis of whole-organism RNA and phosphorus content. , 2005, Proceedings of the National Academy of Sciences of the United States of America.

[36]  Elena Litchman,et al.  Toward a stoichiometric framework for evolutionary biology , 2005 .

[37]  N. Buck,et al.  TWELVE YEARS OF CONTEMPORARY ARMOR EVOLUTION IN A THREESPINE STICKLEBACK POPULATION , 2004, Evolution; international journal of organic evolution.

[38]  D. Schluter,et al.  CHARACTER SHIFTS IN THE DEFENSIVE ARMOR OF SYMPATRIC STICKLEBACKS , 2004, Evolution; international journal of organic evolution.

[39]  J. Elser,et al.  Growth rate–stoichiometry couplings in diverse biota , 2003 .

[40]  J. Rasmussen,et al.  Early juvenile bioenergetic differences between anadromous and resident brook trout (Salvelinus fontinalis) , 2003 .

[41]  J. Elser,et al.  Ecological Stoichiometry: The Biology of Elements from Molecules to the Biosphere , 2002 .

[42]  M. Vanni Nutrient Cycling by Animals in Freshwater Ecosystems , 2002 .

[43]  M. Vanni,et al.  Stoichiometry of nutrient recycling by vertebrates in a tropical stream: linking species identity and ecosystem processes , 2002 .

[44]  Elser,et al.  The evolution of ecosystem processes: growth rate and elemental stoichiometry of a key herbivore in temperate and arctic habitats , 2000 .

[45]  L Nagel,et al.  Natural selection and parallel speciation in sympatric sticklebacks. , 2000, Science.

[46]  James J. Elser,et al.  THE STOICHIOMETRY OF CONSUMER‐DRIVEN NUTRIENT RECYCLING: THEORY, OBSERVATIONS, AND CONSEQUENCES , 1999 .

[47]  J. N. Thompson,et al.  Rapid evolution as an ecological process. , 1998, Trends in ecology & evolution.

[48]  D. Schindler,et al.  STOICHIOMETRY OF FISHES AND THEIR PREY: IMPLICATIONS FOR NUTRIENT RECYCLING , 1997 .

[49]  James J. Elser,et al.  Organism size, life history, and N:P stoichiometry , 1996 .

[50]  J. Rasmussen,et al.  Measuring the bioenergetic cost of fish activity in situ using a globally dispersed radiotracer (137Cs) , 1996 .

[51]  Susan A. Foster,et al.  The Evolutionary biology of the threespine stickleback , 1995 .

[52]  Dolph Schluter,et al.  Adaptive Radiation in Sticklebacks: Size, Shape, and Habitat Use Efficiency , 1993 .

[53]  C. Kraft Estimates of Phosphorus and Nitrogen Cycling by Fish Using a Bioenergetics Approach , 1992 .

[54]  J. Mcphail Ecology and evolution of sympatric sticklebacks (Gasterosteus): evidence for a species-pair in Paxton Lake, Texada Island, British Columbia , 1992 .

[55]  R. Snyder Migration and life histories of the threespine stickleback: evidence for adaptive variation in growth rate between populations , 1991, Environmental Biology of Fishes.

[56]  Robert J. Wootton,et al.  Ecology of Teleost Fishes , 1989, Springer Netherlands.

[57]  R. Wootton,et al.  Temporal patterns in diet and rate of food consumption of the three‐spined stickleback (Gasterosteus aculeatus L.) in Llyn Frongoch, an upland Welsh lake , 1984 .

[58]  D. Lassuy Diet, intestinal morphology, and nitrogen assimilation efficiency in the damselfish, Stegastes lividus, in Guam , 1984, Environmental Biology of Fishes.

[59]  R. Wootton,et al.  Rate of food consumption in a population of threespine sticklebacks, Gasterosteus aculeatus, estimated from the faecal production , 1983, Environmental Biology of Fishes.

[60]  R. Wootton,et al.  Age, growth and rate of food consumption in an upland population of the three‐spined stickleback, Gasterosteus aculeatus L. , 1982 .

[61]  R. Wootton,et al.  The effect of ration and temperature on the growth of the three‐spined stickleback, Gasterosteus aculeatus L. , 1982 .

[62]  M. Bell LATERAL PLATE POLYMORPHISM AND ONTOGENY OF THE COMPLETE PLATE MORPH OF THREESPINE STICKLEBACKS (GASTEROSTEUS ACULEATUS) , 1981, Evolution; international journal of organic evolution.

[63]  R. Wootton The biology of the sticklebacks , 1978 .

[64]  G. Hevesy Rate of Renewal of the Fish Skeleton , 1945 .

[65]  P. Nosil,et al.  Stickleback research: the now and the next , 2013 .

[66]  P. McIntyre,et al.  Ecological Stoichiometry as an Integrative Framework in Stream Fish Ecology , 2010 .

[67]  Alain F. Zuur,et al.  Comprar Mixed Effects Models and Extensions in Ecology with R | Zuur, Alain F. | 9780387874579 | Springer , 2009 .

[68]  R. Sterner,et al.  Elemental stoichiometry of freshwater fishes in relation to phylogeny, allometry and ecology , 2007 .

[69]  E. T Spine deficiency and polymorphism in a population of Gasterosteus aculeatus : an adaptation to predators ? , 2007 .

[70]  J. Mcphail Freshwater Fishes of British Columbia , 2007 .

[71]  W. L. Montgomery,et al.  Gut characteristics and assimilation efficiencies in two species of herbivorous damselfishes (Pomacentridae: Stegastesdorsopunicans and S. planifrons) , 2003 .

[72]  R. Sterner,et al.  CARBON, NITROGEN, AND PHOSPHORUS STOICHIOMETRY OF CYPRINID FISHES , 2000 .

[73]  S. M. Vamosi Postmating isolation mechanisms between sympatric populations of three-spined sticklebacks , 1996 .

[74]  Pj Miller The evolutionary biology of the threespine stickleback , 1995 .

[75]  Regina Karin Saimoto Life history of marine threespine stickleback in Oyster Lagoon, British Columbia , 1993 .

[76]  R. Wootton A Functional Biology of Sticklebacks , 1984, Functional Biology Series.

[77]  Timothy R. Parsons,et al.  A manual of chemical and biological methods for seawater analysis , 1984 .

[78]  T. F. Waters Secondary Production in Inland Waters 1 , 1977 .

[79]  R. Wetzel Limnology: Lake and River Ecosystems , 1975 .