Warm acclimation improves hypoxia tolerance in Fundulus heteroclitus
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[1] D. Crawford,et al. Phenotypic plasticity in gene expression contributes to divergence of locally adapted populations of Fundulus heteroclitus , 2015, Molecular ecology.
[2] P. Schulte,et al. The effects of temperature on aerobic metabolism: towards a mechanistic understanding of the responses of ectotherms to a changing environment , 2015, The Journal of Experimental Biology.
[3] M. Nikinmaa,et al. Warm acclimation and oxygen depletion induce species-specific responses in salmonids , 2015, The Journal of Experimental Biology.
[4] Denise L. Breitburg,et al. Linking coasts and seas to address ocean deoxygenation , 2015 .
[5] G. Scott,et al. Distinct physiological strategies are used to cope with constant hypoxia and intermittent hypoxia in killifish (Fundulus heteroclitus) , 2015, The Journal of Experimental Biology.
[6] M. Rudd. Scientists' perspectives on global ocean research priorities , 2014, Front. Mar. Sci..
[7] C. Wood,et al. Air breathing in Magadi tilapia Alcolapia grahami, under normoxic and hyperoxic conditions, and the association with sunlight and reactive oxygen species. , 2014, Journal of fish biology.
[8] W. Marshall,et al. Cold acclimation of NaCl secretion in a eurythermic teleost: mitochondrial function and gill remodeling. , 2014, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[9] Jonathon H Stillman,et al. Physiological responses to shifts in multiple environmental stressors: relevance in a changing world. , 2013, Integrative and comparative biology.
[10] P. Schulte,et al. Responses to temperature and hypoxia as interacting stressors in fish: implications for adaptation to environmental change. , 2013, Integrative and comparative biology.
[11] J. Richards,et al. Interspecific Differences in Hypoxia-Induced Gill Remodeling in Carp , 2013, Physiological and Biochemical Zoology.
[12] C. Cooper,et al. Gill remodelling during terrestrial acclimation reduces aquatic respiratory function of the amphibious fish Kryptolebias marmoratus , 2012, Journal of Experimental Biology.
[13] T. Wernberg,et al. A decade of climate change experiments on marine organisms: procedures, patterns and problems , 2012 .
[14] P. Schulte,et al. Thermal Acclimation Is Not Necessary to Maintain a Wide Thermal Breadth of Aerobic Scope in the Common Killifish (Fundulus heteroclitus) , 2012, Physiological and Biochemical Zoology.
[15] W. Zhang,et al. Gill Remodeling in Crucian Carp during Sustained Exercise and the Effect on Subsequent Swimming Performance , 2011, Physiological and Biochemical Zoology.
[16] R. Vaquer-Sunyer,et al. Temperature effects on oxygen thresholds for hypoxia in marine benthic organisms , 2011 .
[17] R. Rosenberg,et al. Introduction to Environmental and Economic Consequences of Hypoxia , 2011 .
[18] J. Richards. Physiological, behavioral and biochemical adaptations of intertidal fishes to hypoxia , 2011, Journal of Experimental Biology.
[19] L. Chapman,et al. Geographic variation in phenotypic plasticity in response to dissolved oxygen in an African cichlid fish , 2010, Journal of evolutionary biology.
[20] G. Nilsson,et al. Effects of elevated temperature on coral reef fishes: loss of hypoxia tolerance and inability to acclimate. , 2010, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[21] Denis Gilbert,et al. Temporal responses of coastal hypoxia to nutrient loading and physical controls , 2009 .
[22] A. Kurt Gamperl,et al. Does the ability to metabolically downregulate alter the hypoxia tolerance of fishes? A comparative study using cunner (T. adspersus) and Greenland cod (G. ogac). , 2009, Journal of experimental zoology. Part A, Ecological genetics and physiology.
[23] S. Perry,et al. The effects of thermally induced gill remodeling on ionocyte distribution and branchial chloride fluxes in goldfish (Carassius auratus) , 2009, Journal of Experimental Biology.
[24] J. Richards,et al. Mechanisms and evolution of hypoxia tolerance in fish , 2009, Proceedings of the Royal Society B: Biological Sciences.
[25] P. Schulte,et al. Do mitochondrial properties explain intraspecific variation in thermal tolerance? , 2009, Journal of Experimental Biology.
[26] Benjamin S Halpern,et al. Interactive and cumulative effects of multiple human stressors in marine systems. , 2008, Ecology letters.
[27] P. Schulte,et al. Regulation of pyruvate dehydrogenase in the common killifish, Fundulus heteroclitus, during hypoxia exposure. , 2008, American journal of physiology. Regulatory, integrative and comparative physiology.
[28] R. Rosenberg,et al. Spreading Dead Zones and Consequences for Marine Ecosystems , 2008, Science.
[29] C. Wood,et al. The effect of hypoxia on gill morphology and ionoregulatory status in the Lake Qinghai scaleless carp, Gymnocypris przewalskii , 2008, Journal of Experimental Biology.
[30] J. Richards,et al. The Osmorespiratory Compromise in Sculpins: Impaired Gas Exchange Is Associated with Freshwater Tolerance , 2008, Physiological and Biochemical Zoology.
[31] G. Nilsson. Gill remodeling in fish – a new fashion or an ancient secret? , 2007, Journal of Experimental Biology.
[32] E. D. Stevens,et al. Gill morphology of the mangrove killifish (Kryptolebias marmoratus) is plastic and changes in response to terrestrial air exposure , 2007, Journal of Experimental Biology.
[33] P. Schulte. Responses to environmental stressors in an estuarine fish: Interacting stressors and the impacts of local adaptation , 2007 .
[34] P. Schulte,et al. Intraspecific variation in thermal tolerance and heat shock protein gene expression in common killifish, Fundulus heteroclitus , 2006, Journal of Experimental Biology.
[35] Christopher D G Harley,et al. The impacts of climate change in coastal marine systems. , 2006, Ecology letters.
[36] G. Nilsson,et al. Cell proliferation and gill morphology in anoxic crucian carp. , 2005, American journal of physiology. Regulatory, integrative and comparative physiology.
[37] G. Nilsson,et al. Temperature alters the respiratory surface area of crucian carp Carassius carassius and goldfish Carassius auratus , 2005, Journal of Experimental Biology.
[38] G. Nilsson,et al. Hypoxia induces adaptive and reversible gross morphological changes in crucian carp gills , 2003, Journal of Experimental Biology.
[39] David Thissen,et al. Quick and Easy Implementation of the Benjamini-Hochberg Procedure for Controlling the False Positive Rate in Multiple Comparisons , 2002 .
[40] N. Virani,et al. Oxygen consumption, blood lactate and inter-individual variation in the gulf killifish, Fundulus grandis, during hypoxia and recovery. , 2000, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[41] A. Clarke,et al. Scaling of metabolic rate with body mass and temperature in teleost fish , 1999 .
[42] Egginton,et al. Cold-induced angiogenesis in seasonally acclimatized rainbow trout (Oncorhynchus mykiss) , 1997, The Journal of experimental biology.
[43] L. Burnett,et al. Respiratory responses of the salt marsh animals, Fundulus heteroclitus, Leiostomus xanthurus, and Palaemonetes pugio to environmental hypoxia and hypercapnia and to the organophosphate pesticide, azinphosmethyl☆ , 1996 .
[44] J. Steffensen,et al. Lethal oxygen levels at different temperatures and the preferred temperature during hypoxia of the Atlantic cod, Gadus morhua L. , 1992 .
[45] Louis I. Gordon,et al. Oxygen solubility in seawater : better fitting equations , 1992 .
[46] F. Rantin,et al. Respiratory responses of Oreochromis niloticus (Pisces, Cichlidae) to environmental hypoxia under different thermal conditions , 1989 .
[47] G. R. Ultsch,et al. Physiological Regulation and Conformation: A BASIC Program for the Determination of Critical Points , 1989, Physiological Zoology.
[48] L. Dimichele,et al. The Molecular Ecology of Fundulus heteroclitus Hemoglobin-Oxygen Affinity , 1986 .
[49] J. Iriberri,et al. Heterotrophic bacterial activity in coastal waters: Functional relationship of temperature and phytoplankton population , 1985 .
[50] A. Place,et al. Kinetic characterization of the lactate dehydrogenase (LDH-B4) allozymes of Fundulus heteroclitus. , 1984, The Journal of biological chemistry.
[51] K. Able,et al. Patterns of Geographic Variation in the Egg Morphology of the Fundulid Fish, Fundulus heteroclitus , 1983 .
[52] L. Dimichele,et al. Physiological basis for swimming endurance differences between LDH-B genotypes of Fundulus heteroclitus. , 1982, Science.
[53] S. Wood. Adaptation of Red Blood Cell Function to Hypoxia and Temperature in Ectothermic Vertebrates , 1980 .
[54] D. Powers. Molecular Ecology of Teleost Fish Hemoglobins Strategies for Adapting to Changing Environments , 1980 .
[55] T. Targett. Respiratory metabolism of temperature acclimated Fundulus heteroclitus (L.): Zones of compensation and dependence , 1978 .
[56] D. Powers,et al. Allosteric modifiers of fish hemoglobins: in vitro and in vivo studies of the effect of ambient oxygen and pH on erythrocyte ATP concentrations. , 1978, The Journal of experimental zoology.
[57] D. Powers,et al. Cellular regulation of an allosteric modifier of fish haemoglobin , 1977, Nature.
[58] A. Farrell,et al. Encyclopedia of fish physiology : from genome to environment , 2011 .
[59] N. Wegner. VENTILATION AND ANIMAL RESPIRATION | Gill Respiratory Morphometrics , 2011 .
[60] J. Richards. Chapter 10 Metabolic and Molecular Responses of Fish to Hypoxia , 2009 .
[61] A. Farrell,et al. Chapter 11 Defining Hypoxia: An Integrative Synthesis of the Responses of Fish to Hypoxia , 2009 .
[62] B. Rees,et al. Seasonal Differences in Hypoxia Tolerance in Gulf Killifish, Fundulus Grandis (Fundulidae) , 2004, Environmental Biology of Fishes.
[63] T. Brey,et al. Scaling of metabolic rate with body mass and temperature in scallops , 2003 .
[64] R. Rosenberg,et al. Marine benthic hypoxia: a review of its ecological effects and the behavioural responses of benthic macrofauna , 1995 .
[65] S. Scheiner. Genetics and Evolution of Phenotypic Plasticity , 1993 .
[66] H. Pörtner,et al. Critical Po2(s) in oxyconforming and oxyregulating animals gas exchange, metabolic rate and the mode of energy production , 1993 .
[67] F. Jensen,et al. Functional adaptations in hemoglobins from ectothermic vertebrates. , 1988, Annual review of physiology.
[68] R. Boutilier,et al. Appendix: Physicochemical Parameters for use in Fish Respiratory Physiology* , 1984 .
[69] H. J. Fyhn,et al. The effect of temperature on the oxygen equilibria of fish hemoglobins in relation to environmental thermal variability , 1979 .