Revisão Revisado por pares

Some Principles in the Thermal Requirements of Fishes

1956; University of Chicago Press; Volume: 31; Issue: 2 Linguagem: Inglês

10.1086/401257

ISSN

1539-7718

Autores

J. R. Brett,

Tópico(s)

Fish Ecology and Management Studies

Resumo

Next article No AccessSome Principles in the Thermal Requirements of FishesJ. R. BrettJ. R. BrettPDFPDF PLUS Add to favoritesDownload CitationTrack CitationsPermissionsReprints Share onFacebookTwitterLinkedInRedditEmail SectionsMoreDetailsFiguresReferencesCited by The Quarterly Review of Biology Volume 31, Number 2Jun., 1956 Published in association with Stony Brook University Article DOIhttps://doi.org/10.1086/401257 Views: 66Total views on this site Citations: 319Citations are reported from Crossref PDF download Crossref reports the following articles citing this article:Anna H. Andreassen, Petter Hall, Pouya Khatibzadeh, Fredrik Jutfelt, Florence Kermen Brain dysfunction during warming is linked to oxygen limitation in larval zebrafish, Proceedings of the National Academy of Sciences 119, no.3939 (Sep 2022).https://doi.org/10.1073/pnas.2207052119Pol Pintanel, Miguel Tejedo, Andrés Merino‐Viteri, Freddy Almeida‐Reinoso, Sofia Salinas‐Ivanenko, Andrea C. López‐Rosero, Gustavo A. Llorente, Luis M. Gutiérrez‐Pesquera Elevational and local climate variability predicts thermal breadth of mountain tropical tadpoles, Ecography 2022, no.55 (Apr 2022).https://doi.org/10.1111/ecog.05906James R. Kerfoot Northward expansion leads to cold tolerance? Investigating thermal adaptation of the non-native pike killifish (Belonesox belizanus) in Florida, Environmental Biology of Fishes 105, no.44 (Apr 2022): 487–497.https://doi.org/10.1007/s10641-022-01248-2Martha M. Muñoz The Bogert effect, a factor in evolution, Evolution 76, no.S1S1 (Nov 2021): 49–66.https://doi.org/10.1111/evo.14388Pablo Escribano-Álvarez, Luis R. Pertierra, Brezo Martínez, Steven L. Chown, Miguel Á. Olalla-Tárraga Half a century of thermal tolerance studies in springtails (Collembola): A review of metrics, spatial and temporal trends, Current Research in Insect Science 2 (Jan 2022): 100023.https://doi.org/10.1016/j.cris.2021.100023Anika Neu, Klaus Fischer Indications for rapid evolution of trait means and thermal plasticity in range‐expanding populations of a butterfly, Journal of Evolutionary Biology 35, no.11 (Dec 2021): 124–133.https://doi.org/10.1111/jeb.13969Gail D. Schwieterman, Emily A. Hardison, Erika J. Eliason Effect of thermal variation on the cardiac thermal limits of a eurythermal marine teleost (Girella nigricans), Current Research in Physiology 5 (Jan 2022): 109–117.https://doi.org/10.1016/j.crphys.2022.02.002Patricia M. Schulte, Timothy M. Healy Physiological diversity and its importance for fish conservation and management in the Anthropocene, (Jan 2022).https://doi.org/10.1016/bs.fp.2022.04.009Lisa Bjerregaard Jørgensen, Hans Malte, Michael Ørsted, Nikolaj Andreasen Klahn, Johannes Overgaard A unifying model to estimate thermal tolerance limits in ectotherms across static, dynamic and fluctuating exposures to thermal stress, Scientific Reports 11, no.11 (Jun 2021).https://doi.org/10.1038/s41598-021-92004-6Leticia E. Fantini, Matthew A. Smith, Michele Jones, Luke A. Roy, Rebecca Lochmann, Anita M. Kelly Growth parameters in northern largemouth bass Micropterus salmoides salmoides raised near their upper thermal tolerance for 28 days, Aquaculture Reports 21 (Nov 2021): 100845.https://doi.org/10.1016/j.aqrep.2021.100845Milene Alexandra Guerreiro, Filipe Martinho, Joana Baptista, Filipe Costa, Miguel Ângelo Pardal, Ana Lígia Primo Function of estuaries and coastal areas as nursery grounds for marine fish early life stages, Marine Environmental Research 170 (Aug 2021): 105408.https://doi.org/10.1016/j.marenvres.2021.105408Katherine J. Sessions, Lindy M. Whitehouse, Lori A. Manzon, Douglas R. Boreham, Christopher M. Somers, Joanna Y. Wilson, Richard G. Manzon The heat shock response shows plasticity in embryonic lake whitefish (Coregonus clupeaformis) exposed to repeated thermal stress, Journal of Thermal Biology 100 (Aug 2021): 103036.https://doi.org/10.1016/j.jtherbio.2021.103036Karl A Roeder, Diane V Roeder, Jelena Bujan, Gadi V P Reddy Ant Thermal Tolerance: A Review of Methods, Hypotheses, and Sources of Variation, Annals of the Entomological Society of America 114, no.44 (May 2021): 459–469.https://doi.org/10.1093/aesa/saab018Michael R. Kearney, Marko Jusup, Melodie A. McGeoch, Sebastiaan A. L. M. Kooijman, Steven L. Chown Where do functional traits come from? The role of theory and models, Functional Ecology 35, no.77 (Jun 2021): 1385–1396.https://doi.org/10.1111/1365-2435.13829Kevin Maebe, Annelien De Baets, Peter Vandamme, Nicolas J. Vereecken, Denis Michez, Guy Smagghe Impact of intraspecific variation on measurements of thermal tolerance in bumble bees, Journal of Thermal Biology 99 (Jul 2021): 103002.https://doi.org/10.1016/j.jtherbio.2021.103002Ernesto Larios-Soriano, Ana Denisse Re-Araujo, Fernando Díaz, Laura L. López-Galindo, Carlos Rosas, Leonardo Ibarra-Castro Effects of recent thermal history on thermal behaviour, thermal tolerance and oxygen uptake of Yellowtail Kingfish (Seriola lalandi) juveniles, Journal of Thermal Biology 99 (Jul 2021): 103023.https://doi.org/10.1016/j.jtherbio.2021.103023Eduardo B. Blödorn, William B. Domingues, Leandro S. Nunes, Eliza R. Komninou, Danillo Pinhal, Vinicius F. Campos MicroRNA roles and their potential use as selection tool to cold tolerance of domesticated teleostean species: A systematic review, Aquaculture 540 (Jul 2021): 736747.https://doi.org/10.1016/j.aquaculture.2021.736747Cassidy J. Cooper, William B. Kristan, John Eme Thermal tolerance and routine oxygen consumption of convict cichlid, Archocentrus nigrofasciatus, acclimated to constant temperatures (20 °C and 30 °C) and a daily temperature cycle (20 °C → 30 °C), Journal of Comparative Physiology B 191, no.33 (Feb 2021): 479–491.https://doi.org/10.1007/s00360-021-01341-5Gento Sakurai, Satoshi Takahashi, Yusei Yoshida, Hiroshi Yoshida, Jun Shoji, Takeshi Tomiyama Importance of experienced thermal history: Effect of acclimation temperatures on the high-temperature tolerance and growth performance of juvenile marbled flounder, Journal of Thermal Biology 97 (Apr 2021): 102831.https://doi.org/10.1016/j.jtherbio.2020.102831Anne Beemelmanns, Laia Ribas, Dafni Anastasiadi, Javier Moraleda-Prados, Fábio S. Zanuzzo, Matthew L. Rise, A. Kurt Gamperl DNA Methylation Dynamics in Atlantic Salmon (Salmo salar) Challenged With High Temperature and Moderate Hypoxia, Frontiers in Marine Science 7 (Jan 2021).https://doi.org/10.3389/fmars.2020.604878Susanta Kumar Chakraborty River Pollution and Perturbation: Perspectives and Processes, (Feb 2021): 443–530.https://doi.org/10.1007/978-3-030-53941-2_5You Xu, Xiaojuan Guo, Yong Dan, Zhengjian Yang, Jun Ma, Defu Liu, Yaqian Xu Impact of cascade reservoirs on continuity of river water temperature: A temperature trend hypothesis in river, Hydrological Processes 19 (Dec 2020).https://doi.org/10.1002/hyp.13994Austin Hall, Yung‐Chia Chiu, John S. Selker Coupling high‐resolution monitoring and modelling to verify restoration‐based temperature improvements, River Research and Applications 36, no.88 (Jul 2020): 1430–1441.https://doi.org/10.1002/rra.3668Shuang Liu, Zhenghui Xie, Bin Liu, Yan Wang, Junqiang Gao, Yujin Zeng, Jinbo Xie, Zhipeng Xie, Binghao Jia, Peihua Qin, Ruichao Li, Longhuan Wang, Si Chen Global river water warming due to climate change and anthropogenic heat emission, Global and Planetary Change 193 (Oct 2020): 103289.https://doi.org/10.1016/j.gloplacha.2020.103289Adam F. Younes, Robert M. Cerrato, Janet A. Nye, Heather M. Patterson Overwintering survivorship and growth of young-of-the-year black sea bass Centropristis striata, PLOS ONE 15, no.88 (Aug 2020): e0236705.https://doi.org/10.1371/journal.pone.0236705Flemming T. Dahlke, Sylke Wohlrab, Martin Butzin, Hans-Otto Pörtner Thermal bottlenecks in the life cycle define climate vulnerability of fish, Science 369, no.64996499 (Jul 2020): 65–70.https://doi.org/10.1126/science.aaz3658Nathan J. Waltham, Marcus Sheaves Thermal exposure risks to mobile tropical marine snails: Are eco-engineered rock pools on seawalls scale-specific enough for comprehensive biodiversity outcomes?, Marine Pollution Bulletin 156 (Jul 2020): 111237.https://doi.org/10.1016/j.marpolbul.2020.111237Victor H. Gonzalez, John M. Hranitz, Catherine R. Percival, Kristen L. Pulley, Stephen T. Tapsak, Thomas Tscheulin, Theodora Petanidou, John F. Barthell Thermal tolerance varies with dim‐light foraging and elevation in large carpenter bees (Hymenoptera: Apidae: Xylocopini), Ecological Entomology 45, no.33 (Jan 2020): 688–696.https://doi.org/10.1111/een.12842Jennifer L. Gosselin, James J. Anderson, Madison Powell Step-patterned survivorship curves: Mortality and loss of equilibrium responses to high temperature and food restriction in juvenile rainbow trout (Oncorhynchus mykiss), PLOS ONE 15, no.55 (May 2020): e0233699.https://doi.org/10.1371/journal.pone.0233699Danielle M. Frechette, Elsa Goerig, Normand E. Bergeron Factors influencing fallback by adult Atlantic salmon following transport into a novel river reach, Fisheries Management and Ecology 27, no.11 (Aug 2019): 20–31.https://doi.org/10.1111/fme.12378J Burbank, DAR Drake, M Power Field-based oxygen isotope fractionation for the conservation of imperilled fishes: an application with the threatened silver shiner Notropis photogenis, Endangered Species Research (Jan 2020).https://doi.org/10.3354/esr01040Darren A. Smith, Mark S. Ridgway Temperature selection in Brook Charr: lab experiments, field studies, and matching the Fry curve, Hydrobiologia 840, no.11 (Jan 2019): 143–156.https://doi.org/10.1007/s10750-018-3869-4Michelle VanCompernolle, Jason H. Knouft, Darren L. Ficklin, Risto Heikkinen Multispecies conservation of freshwater fish assemblages in response to climate change in the southeastern United States, Diversity and Distributions 25, no.99 (Jun 2019): 1388–1398.https://doi.org/10.1111/ddi.12948Jennifer Sunday, Joanne M. Bennett, Piero Calosi, Susana Clusella-Trullas, Sarah Gravel, Anna L. Hargreaves, Félix P. Leiva, Wilco C. E. P. Verberk, Miguel Ángel Olalla-Tárraga, Ignacio Morales-Castilla Thermal tolerance patterns across latitude and elevation, Philosophical Transactions of the Royal Society B: Biological Sciences 374, no.17781778 (Aug 2019): 20190036.https://doi.org/10.1098/rstb.2019.0036Pol Pintanel, Miguel Tejedo, Santiago R. Ron, Gustavo A. Llorente, Andrés Merino‐Viteri Elevational and microclimatic drivers of thermal tolerance in Andean Pristimantis frogs, Journal of Biogeography 46, no.88 (May 2019): 1664–1675.https://doi.org/10.1111/jbi.13596Heather A. Stewart, Daniel L. Aboagye, Shane W. Ramee, Peter J. Allen Effects of acute thermal stress on acid–base regulation, haematology, ion‐osmoregulation and aerobic metabolism in Channel Catfish ( Ictalurus punctatus ), Aquaculture Research 50, no.88 (May 2019): 2133–2141.https://doi.org/10.1111/are.14093Alexis Paumier, Hilaire Drouineau, Laurent Carry, David José Nachón, Patrick Lambert A field-based definition of the thermal preference during spawning for allis shad populations (Alosa alosa), Environmental Biology of Fishes 102, no.66 (Apr 2019): 845–855.https://doi.org/10.1007/s10641-019-00874-7Monika Barbara Kalinowska Effect of water–air heat transfer on the spread of thermal pollution in rivers, Acta Geophysica 67, no.22 (Feb 2019): 597–619.https://doi.org/10.1007/s11600-019-00252-yTheresa F. Dabruzzi, Nann A. Fangue, Nadiarti N. Kadir, Wayne A. Bennett Thermal niche adaptations of common mudskipper (Periophthalmus kalolo) and barred mudskipper (Periophthalmus argentilineatus) in air and water, Journal of Thermal Biology 81 (Apr 2019): 170–177.https://doi.org/10.1016/j.jtherbio.2019.02.023Michelle VanCompernolle, Jason H. Knouft, Darren L. Ficklin Hydrologic and thermal conditions occupied by a species within a single watershed predict the geographic extent of occurrence of freshwater fishes, Ecohydrology 12, no.33 (Jan 2019).https://doi.org/10.1002/eco.2071Mehmet Kır, Özgecan Demirci Thermal tolerance and standard metabolic rate of juvenile European sea bass (Dicentrarchus labrax, Linnaeus, 1758) acclimated to four temperatures, Journal of Thermal Biology 78 (Dec 2018): 209–213.https://doi.org/10.1016/j.jtherbio.2018.10.008Tetsuo Harada, Mitsuru Nakajo, Takahiro Furuki, Noritomo Umamoto, Masatoshi Moku, Takero Sekimoto, Chihiro Katagiri Seasonal Change in Distribution and Heat Coma Temperature of Oceanic Skaters, Halobates (Insecta, Heteroptera: Gerridae), Insects 9, no.44 (Oct 2018): 133.https://doi.org/10.3390/insects9040133Danielle M. Frechette, Stephen J. Dugdale, Julian J. Dodson, Normand E. Bergeron Understanding summertime thermal refuge use by adult Atlantic salmon using remote sensing, river temperature monitoring, and acoustic telemetry, Canadian Journal of Fisheries and Aquatic Sciences 75, no.1111 (Nov 2018): 1999–2010.https://doi.org/10.1139/cjfas-2017-0422Kaitlin M. Baudier, Catherine L. D’Amelio, Rumaan Malhotra, Michael P. O’Connor, and Sean O’Donnell Extreme Insolation: Climatic Variation Shapes the Evolution of Thermal Tolerance at Multiple Scales, The American Naturalist 192, no.33 (Jun 2018): 347–359.https://doi.org/10.1086/698656Nathan J Waltham Acute thermal effects in an inland freshwater crab Austrothelphusa transversa (von Martens, 1868) occupying seasonal, tropical rivers, Journal of Crustacean Biology 38, no.44 (Jun 2018): 497–503.https://doi.org/10.1093/jcbiol/ruy051Jessica L. Burnett, Kevin, L. Pope, Alec Wong, Craig R. Allen, Danielle M. Haak, Bruce J. Stephen, Daniel R. Uden Thermal Tolerance Limits of the Chinese Mystery Snail ( Bellamya chinensis ): Implications for Management, American Malacological Bulletin 36, no.11 (May 2018): 140–144.https://doi.org/10.4003/006.036.0106Florian Pletterbauer, Andreas Melcher, Wolfram Graf Climate Change Impacts in Riverine Ecosystems, (May 2018): 203–223.https://doi.org/10.1007/978-3-319-73250-3_11B. D. Barker, A. Z. Horodysky, D. W. Kerstetter Hot or not? Comparative behavioral thermoregulation, critical temperature regimes, and thermal tolerances of the invasive lionfish Pterois sp. versus native western North Atlantic reef fishes, Biological Invasions 20, no.11 (Jul 2017): 45–58.https://doi.org/10.1007/s10530-017-1511-4María Eugenia Barrantes, María Eugenia Lattuca, Fabián Alberto Vanella, Daniel Alfredo Fernández Thermal ecology of Galaxias platei (Pisces, Galaxiidae) in South Patagonia: perspectives under a climate change scenario, Hydrobiologia 802, no.11 (Jun 2017): 255–267.https://doi.org/10.1007/s10750-017-3275-3Britta Chambers, Soni Pradhanang, Arthur Gold Simulating Climate Change Induced Thermal Stress in Coldwater Fish Habitat Using SWAT Model, Water 9, no.1010 (Sep 2017): 732.https://doi.org/10.3390/w9100732Britta Chambers, Soni Pradhanang, Arthur Gold Assessing Thermally Stressful Events in a Rhode Island Coldwater Fish Habitat Using the SWAT Model, Water 9, no.99 (Sep 2017): 667.https://doi.org/10.3390/w9090667Nathan J. Waltham, Marcus Sheaves Acute thermal tolerance of tropical estuarine fish occupying a man-made tidal lake, and increased exposure risk with climate change, Estuarine, Coastal and Shelf Science 196 (Sep 2017): 173–181.https://doi.org/10.1016/j.ecss.2017.06.032Yifan Liu, Daoyuan Ma, Chunyan Zhao, Zhizhong Xiao, Shihong Xu, Yongshuang Xiao, Yanfeng Wang, Qinghua Liu, Jun Li The expression pattern of hsp70 plays a critical role in thermal tolerance of marine demersal fish: Multilevel responses of Paralichthys olivaceus and its hybrids (P. olivaceus ♀ × P. dentatus ♂) to chronic and acute heat stress, Marine Environmental Research 129 (Aug 2017): 386–395.https://doi.org/10.1016/j.marenvres.2017.06.015Kevin A. Crook, Emily Maxner, Gail K. Davoren, Dominique Robert Temperature-based spawning habitat selection by capelin (Mallotus villosus) in Newfoundland, ICES Journal of Marine Science 74, no.66 (Mar 2017): 1622–1629.https://doi.org/10.1093/icesjms/fsx023Aslak K. Hansen, David B. Byriel, Mads R. Jensen, John F. Steffensen, Morten Bo S. Svendsen Optimum temperature of a northern population of Arctic charr (Salvelinus alpinus) using heart rate Arrhenius breakpoint analysis, Polar Biology 40, no.55 (Sep 2016): 1063–1070.https://doi.org/10.1007/s00300-016-2033-8Timothy A. Ellis, Jeffrey A. Buckel, Joseph E. Hightower, Stephen J. Poland Relating cold tolerance to winterkill for spotted seatrout at its northern latitudinal limits, Journal of Experimental Marine Biology and Ecology 490 (May 2017): 42–51.https://doi.org/10.1016/j.jembe.2017.01.010Alison M. Hutson, Louie A. Toya, Douglas Tave, Michael D. Porter Lower lethal temperature of the endangered Rio Grande silvery minnow and its implications for propagation and reintroduction, Journal of Applied Aquaculture 29, no.22 (Jan 2017): 117–125.https://doi.org/10.1080/10454438.2016.1274934Mehmet Kır, Murat Can Sunar, Barış Can Altındağ Thermal tolerance and preferred temperature range of juvenile meagre acclimated to four temperatures, Journal of Thermal Biology 65 (Apr 2017): 125–129.https://doi.org/10.1016/j.jtherbio.2017.02.018TOM R. BISHOP, MARK P. ROBERTSON, BERNDT J. VAN RENSBURG, CATHERINE L. PARR Coping with the cold: minimum temperatures and thermal tolerances dominate the ecology of mountain ants, Ecological Entomology 42, no.22 (Nov 2016): 105–114.https://doi.org/10.1111/een.12364B. Schreiber, J. Monka, B. Drozd, M. Hundt, M. Weiss, T. Oswald, R. Gergs, R. Schulz Thermal requirements for growth, survival and aerobic performance of weatherfish larvae Misgurnus fossilis, Journal of Fish Biology 90, no.44 (Jan 2017): 1597–1608.https://doi.org/10.1111/jfb.13261Belinda Heerwaarden, Vanessa Kellermann, Carla M. Sgrò, Caroline Williams Limited scope for plasticity to increase upper thermal limits, Functional Ecology 30, no.1212 (Jun 2016): 1947–1956.https://doi.org/10.1111/1365-2435.12687Shannon K. Brewer, Ryan A. McManamay, Andrew D. Miller, Robert Mollenhauer, Thomas A. Worthington, Tom Arsuffi Advancing Environmental Flow Science: Developing Frameworks for Altered Landscapes and Integrating Efforts Across Disciplines, Environmental Management 58, no.22 (May 2016): 175–192.https://doi.org/10.1007/s00267-016-0703-5David P. Coulter, Maria S. Sepúlveda, Cary D. Troy, Tomas O. Höök Species-specific effects of subdaily temperature fluctuations on consumption, growth and stress responses in two physiologically similar fish species, Ecology of Freshwater Fish 25, no.33 (Apr 2015): 465–475.https://doi.org/10.1111/eff.12227M K Purcell, C L McKibben, S Pearman-Gillman, D G Elliott, J R Winton Effects of temperature on Renibacterium salmoninarum infection and transmission potential in Chinook salmon, Oncorhynchus tshawytscha (Walbaum), Journal of Fish Diseases 39, no.77 (Oct 2015): 787–798.https://doi.org/10.1111/jfd.12409L. M. Gutiérrez-Pesquera, M. Tejedo, M. Á. Olalla-Tárraga, H. Duarte, A. Nicieza, M. Solé Testing the climate variability hypothesis in thermal tolerance limits of tropical and temperate tadpoles, Journal of Biogeography 43, no.66 (Feb 2016): 1166–1178.https://doi.org/10.1111/jbi.12700Rachel A. Slatyer, Sean D. Schoville, Joshua B. Benoit Physiological Limits along an Elevational Gradient in a Radiation of Montane Ground Beetles, PLOS ONE 11, no.44 (Apr 2016): e0151959.https://doi.org/10.1371/journal.pone.0151959M. C. Spear, J. D. Kieffer Critical thermal maxima and hematology for juvenile Atlantic ( Acipenser oxyrinchus Mitchill 1815) and shortnose ( Acipenser brevirostrum Lesueur, 1818) sturgeons, Journal of Applied Ichthyology 32, no.22 (Feb 2016): 251–257.https://doi.org/10.1111/jai.13002I. R. Miller, K. M. Kappenman, M. J. Talbott Upper lethal temperature of larval pallid sturgeon Scaphirhynchus albus (Forbes and Richardson, ), Journal of Applied Ichthyology 32, no.22 (Feb 2016): 272–276.https://doi.org/10.1111/jai.12994Steven L. Chown, Kevin J. Gaston, Charles Fox Macrophysiology – progress and prospects, Functional Ecology 30, no.33 (Aug 2015): 330–344.https://doi.org/10.1111/1365-2435.12510Matthew J. Troia, Michael A. Denk, Keith B. Gido, Jordan Rosenfeld Temperature-dependent performance as a driver of warm-water fish species replacement along the river continuum, Canadian Journal of Fisheries and Aquatic Sciences 73, no.33 (Mar 2016): 394–405.https://doi.org/10.1139/cjfas-2015-0094B. Jonsson, N. Jonsson, J. Albretsen Environmental change influences the life history of salmon Salmo salar in the North Atlantic Ocean, Journal of Fish Biology 88, no.22 (Jan 2016): 618–637.https://doi.org/10.1111/jfb.12854Michael Newton, George Ice Regulating riparian forests for aquatic productivity in the Pacific Northwest, USA: addressing a paradox, Environmental Science and Pollution Research 23, no.22 (Nov 2015): 1149–1157.https://doi.org/10.1007/s11356-015-5814-7Andrew R. Brand Scallop Ecology, (Jan 2016): 469–533.https://doi.org/10.1016/B978-0-444-62710-0.00011-0Graham D. Raby, Michael R. Donaldson, Scott G. Hinch, Timothy D. Clark, Erika J. Eliason, Kenneth M. Jeffries, Katrina V. Cook, Amy Teffer, Arthur L. Bass, Kristina M. Miller, David A. Patterson, Anthony P. Farrell, Steven J. Cooke Fishing for Effective Conservation: Context and Biotic Variation are Keys to Understanding the Survival of Pacific Salmon after Catch-and-Release, Integrative and Comparative Biology 55, no.44 (Jul 2015): 554–576.https://doi.org/10.1093/icb/icv088Lesley T. Lancaster, Rachael Y. Dudaniec, Bengt Hansson, Erik I. Svensson Latitudinal shift in thermal niche breadth results from thermal release during a climate-mediated range expansion, Journal of Biogeography 42, no.1010 (Jul 2015): 1953–1963.https://doi.org/10.1111/jbi.12553Chris Harrod Climate change and freshwater fisheries, (Sep 2015): 641–694.https://doi.org/10.1002/9781118394380.ch50Anamarija Rabi, Marijana Hadzima-Nyarko, Marija Šperac Modelling river temperature from air temperature: case of the River Drava (Croatia), Hydrological Sciences Journal 60, no.99 (Sep 2015): 1490–1507.https://doi.org/10.1080/02626667.2014.914215Rasmus Ern, Do Thi Thanh Huong, Nguyen Thanh Phuong, Peter Teglberg Madsen, Tobias Wang, Mark Bayley Some like it hot: Thermal tolerance and oxygen supply capacity in two eurythermal crustaceans, Scientific Reports 5, no.11 (Jun 2015).https://doi.org/10.1038/srep10743Brooke E. Penaluna, Steve F. Railsback, Jason B. Dunham, Sherri Johnson, Robert E. Bilby, Arne E. Skaugset, Michael Bradford The role of the geophysical template and environmental regimes in controlling stream-living trout populations, Canadian Journal of Fisheries and Aquatic Sciences 72, no.66 (Jun 2015): 893–901.https://doi.org/10.1139/cjfas-2014-0377David P. Coulter, Tomas O. Höök, Cecon T. Mahapatra, Samuel C. Guffey, Maria S. Sepúlveda Fluctuating Water Temperatures Affect Development, Physiological Responses and Cause Sex Reversal in Fathead Minnows, Environmental Science & Technology 49, no.33 (Jan 2015): 1921–1928.https://doi.org/10.1021/es5057159Matthew J. Troia, James E. Whitney, Keith B. Gido Thermal performance of larval longfin dace (Agosia chrysogaster), with implications for climate change, Environmental Biology of Fishes 98, no.11 (May 2014): 395–404.https://doi.org/10.1007/s10641-014-0270-7R. E. Holt, C. Jorgensen Climate warming causes life-history evolution in a model for Atlantic cod (Gadus morhua), Conservation Physiology 2, no.11 (Nov 2014): cou050–cou050.https://doi.org/10.1093/conphys/cou050Nann A. Fangue, Martin A. Wunderly, Theresa F. Dabruzzi, and Wayne A. Bennett Asymmetric Thermal Acclimation Responses Allow Sheepshead Minnow Cyprinodon variegatus to Cope with Rapidly Changing Temperatures, Physiological and Biochemical Zoology 87, no.66 (Jul 2015): 805–816.https://doi.org/10.1086/678965D. P. Coulter, M. S. Sepúlveda, C. D. Troy, T. O. Höök Thermal habitat quality of aquatic organisms near power plant discharges: potential exacerbating effects of climate warming, Fisheries Management and Ecology 21, no.33 (Apr 2014): 196–210.https://doi.org/10.1111/fme.12064Stuart A. Ludsin, Kristen M. DeVanna, Ralph E.H. Smith Physical–biological coupling and the challenge of understanding fish recruitment in freshwater lakes, Canadian Journal of Fisheries and Aquatic Sciences 71, no.55 (May 2014): 775–794.https://doi.org/10.1139/cjfas-2013-0512Heather A. Stewart, Peter J. Allen Critical Thermal Maxima of Two Geographic Strains of Channel and Hybrid Catfish, North American Journal of Aquaculture 76, no.22 (Jan 2014): 104–111.https://doi.org/10.1080/15222055.2013.856827Maureen K. Purcell, Jeffrey J. Hard, Kathleen G. Neely, Linda K. Park, James R. Winton, Diane G. Elliott Genetic Variation in Bacterial Kidney Disease (BKD) Susceptibility in Lake Michigan Chinook Salmon and Its Progenitor Population from the Puget Sound, Journal of Aquatic Animal Health 26, no.11 (Feb 2014): 9–18.https://doi.org/10.1080/08997659.2013.860061P. Brahmane M., K. Krishnani K., Sarkar B., Sajjanar B., Kumar, Satish, D. Nakhawa A., S. Minhas P. Growth, thermal tolerance and oxygen consumption in rohu, Labeo rohita early fry acclimated to four temperatures, African Journal of Agricultural Research 9, no.99 (Feb 2014): 854–858.https://doi.org/10.5897/AJAR2013.7299Susana Clusella-Trullas, Steven L. Chown Lizard thermal trait variation at multiple scales: a review, Journal of Comparative Physiology B 184, no.11 (Aug 2013): 5–21.https://doi.org/10.1007/s00360-013-0776-xLisa G. Crozier, Jeffrey A. Hutchings Plastic and evolutionary responses to climate change in fish, Evolutionary Applications 7, no.11 (Jan 2014): 68–87.https://doi.org/10.1111/eva.12135 , Crustaceana 87, no.77 ( 2014): 827.https://doi.org/10.1163/15685403-00003323L. S. Peck, S. A. Morley, J. Richard, M. S. Clark Acclimation and thermal tolerance in Antarctic marine ectotherms, Journal of Experimental Biology 217, no.11 (Dec 2013): 16–22.https://doi.org/10.1242/jeb.089946Elizabeth Cole, Michael Newton Influence of streamside buffers on stream temperature response following clear-cut harvesting in western Oregon, Canadian Journal of Forest Research 43, no.1111 (Nov 2013): 993–1005.https://doi.org/10.1139/cjfr-2013-0138Ary A. Hoffmann, Steven L. Chown, Susana Clusella-Trullas, Charles Fox Upper thermal limits in terrestrial ectotherms: how constrained are they?, Functional Ecology 27, no.44 (Jul 2012): 934–949.https://doi.org/10.1111/j.1365-2435.2012.02036.xSarah S. Hasnain, Brian J. Shuter, Charles K. Minns, Dylan Fraser Phylogeny influences the relationships linking key ecological thermal metrics for North American freshwater fish species, Canadian Journal of Fisheries and Aquatic Sciences 70, no.77 (Jul 2013): 964–972.https://doi.org/10.1139/cjfas-2012-0217Gerhard Heldmaier, Gerhard Neuweiler, Wolfgang Rössler Temperatur, (Oct 2012): 87–147.https://doi.org/10.1007/978-3-642-25155-9_3Shoko Matsui, Ryutei Inui, Yoh Yamashita Distribution and habitat use of three Acentrogobius (Perciformes: Gobiidae) species in the coastal waters of Japan, Ichthyological Research 59, no.44 (Jun 2012): 373–377.https://doi.org/10.1007/s10228-012-0288-9JAMES ROY KERFOOT JR. Thermal Tolerance of the Invasive Belonesox belizanus, Pike Killifish, Throughout Ontogeny, Journal of Experimental Zoology Part A: Ecological Genetics and Physiology 317, no.55 (May 2012): 266–274.https://doi.org/10.1002/jez.1720Simon A. Morley, Timo Hirse, Michael A.S. Thorne, Hans O. Pörtner, Lloyd S. Peck Physiological plasticity, long term resistance or acclimation to temperature, in the Antarctic bivalve, Laternula elliptica, Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology 162, no.11 (May 2012): 16–21.https://doi.org/10.1016/j.cbpa.2012.01.009A. L. DiGirolamo, S. H. Gruber, C. Pomory, W. A. Bennett Diel temperature patterns of juvenile lemon sharks Negaprion brevirostris, in a shallow-water nursery, Journal of Fish Biology 80, no.55 (Apr 2012): 1436–1448.https://doi.org/10.1111/j.1095-8649.2012.03263.xEric T. Schultz, Stephen D. McCormick Euryhalinity in An Evolutionary Context, (Jan 2012): 477–533.https://doi.org/10.1016/B978-0-12-396951-4.00010-4K. M. Kibler, D. D. Tullos, G. M. Kondolf Learning from dam removal monitoring: Challenges to selecting experimental design and establishing significance of outcomes, River Research and Applications 27, no.88 (Jun 2010): 967–975.https://doi.org/10.1002/rra.1415Kiira J. Siitari, William W. Taylor, Stacy A. C. Nelson, Kerryann E. Weaver The influence of land cover composition and groundwater on thermal habitat availability for brook charr (Salvelinus fontinalis) populations in the United States of America, Ecology of Freshwater Fish 20, no.33 (Feb 2011): 431–437.https://doi.org/10.1111/j.1600-0633.2011.00487.xBiao Huang, Christian Langpap, Richard M. Adams Using Instream Water Temperature Forecasts for Fisheries Management: An Application in the Pacific Northwest1, JAWRA Journal of the American Water Resources Association 47, no.44 (Jun 2011): 861–876.https://doi.org/10.1111/j.1752-1688.2011.00562.xWilliam Rayment, Deanna Clement, Steve Dawson, Elisabeth Slooten, Eduardo Secchi Distribution of Hector's dolphin (Cephalorhynchus hectori) off the west coast, South Island, New Zealand, with implications for the management of bycatch, Marine Mammal Science 27, no.22 (Jul 2010): 398–420.https://doi.org/10.1111/j.1748-7692.2010.00407.xSarah Tepler, Katharine Mach, and Mark Denny Preference Versus Performance: Body Temperature of the Intertidal Snail Chlorostoma funebralis, The Biological Bulletin 220, no.22 (Sep 2016): 107–117.https://doi.org/10.1086/BBLv220n2p107S.A. Morley, V. Lemmon, B.E. Obermüller, J.I. Spicer, M.S. Clark, L.S. Peck Duration tenacity: A method for assessing acclimatory capacity of the Antar

Referência(s)
Altmetric
PlumX