Padilla, Pablo ; Université de Liège - ULiège > Département de Biologie, Ecologie et Evolution > Laboratoire d'Écologie et de Conservation des Amphibiens
Measey, John
Herrel, Anthony
Language :
English
Title :
Rapid Shifts in the Temperature Dependence of Locomotor Performance in an Invasive Frog, Xenopus laevis, Implications for Conservation
Angilletta, MJ., Estimating and comparing thermal performance curves (2006) J Therm Biol, 31, pp. 541-545
Angilletta, MJ., (2009) Thermal adaptation: a theoretical and empirical synthesis, , Oxford, UK: Oxford University Press
Angilletta, MJ, Niewiarowski, PH, Navas, CA., The evolution of thermal physiology in ectotherms (2002) J Therm Biol, 27, pp. 249-268
Arnold, SJ., Morphology, performance and fitness (1983) Am Zool, 23, pp. 347-361
Bestion, E, Clobert, J, Cote, J., Dispersal response to climate change: scaling down to intraspecific variation (2015) Ecol Lett, 18, pp. 1226-1233
Brown, JH, Gillooly, JF, Allen, AP, Savage, VM, West, GB., Toward a metabolic theory of ecology (2004) Ecology, 85, pp. 1771-1789
Brown, JL., SDMtoolbox: a python-based GIS toolkit for landscape genetic, biogeographic and species distribution model analyses (2014) Methods Ecol Evol, 5, pp. 694-700
Catford, JA, Jansson, R, Nilsson, C., Reducing redundancy in invasion ecology by integrating hypotheses into a single theoretical framework (2009) Divers Distrib, 15, pp. 22-40
Chown, S, Hoffmann, A, Kristensen, T, Angilletta, M, Stenseth, N, Pertoldi, C., Adapting to climate change: a perspective from evolutionary physiology (2010) Clim Res, 43, pp. 3-15
Cortes, PA, Puschel, H, Acuña, P, Bartheld, JL, Bozinovic, F., Thermal ecological physiology of native and invasive frog species: do invaders perform better? (2016) Conserv Physiol, 4, p. cow056
Courant, J, Secondi, J, Bereiziat, V, Herrel, A., Resources allocated to reproduction decrease at the range edge of an expanding population of an invasive amphibian (2017) Biol J Linn Soc, 122, pp. 157-165
Courant, J, Secondi, J, Vollette, J, Herrel, A, Thirion, J-M., Assessing impacts of the invasive Xenopus laevis on amphibians in western France (2018) Amph Rept, 39, pp. 219-227
Courant, J, Vollette, E, Secondi, J, Herrel, A., Changes in the aquatic macro-invertebrate communities through the expanding range of an invasive anuran (2018) Food Webs, 17, p. e00098
Courchamp, F, Fournier, A, Bellard, C, Bertelsmeier, C, Bonnaud, E, Jeschke, JM, Russell, JC., Invasion biology: specific problems and possible solutions (2017) Trends Ecol Evol, 32, pp. 13-22
De Busschere, C, Courant, J, Herrel, A, Rebelo, R, Rödder, D, Measey, GJ, Backeljau, T., Unequal contribution of native South African phylogeographic lineages to the invasion of the African clawed frog, Xenopus laevis, in Europe (2016) PeerJ, 4, p. e1659
Du Preez, LH, Kunene, N, Hanner, R, Giesy, JP, Solomon, KR, Hosmer, A, Van Der Kraak, GJ., Population-specific incidence of testicular ovarian follicles in Xenopus laevis from South Africa: a potential issue in endocrine testing (2009) Aquat Toxicol, 95, pp. 10-16
Facon, B, Genton, B, Shykoff, J, Jarne, P, Estoup, A, David, P., A general eco-evolutionary framework for understanding bioinvasions (2006) Trends Ecol Evol, 21, pp. 130-135
Fick, SE, Hijmans, RJ., Worldclim 2: new 1-km spatial resolution climate surfaces for global land areas (2017) Int J Climatol, 37, pp. 4302-4315
Furman, BLS, Bewick, AJ, Harrison, TL, Greenbaum, E, Gvozdık, V, Kusamba, C, Evans, BJ., Pan-African phylogeography of a model organism, the African clawed frog ‘Xenopus laevis (2015) Mol Ecol, 24, pp. 909-925
Garcıa, Y, Callaway, RM, Diaconu, A, Montesinos, D., Invasive and non-invasive congeners show similar trait shifts between their same native and non-native ranges (2013) PLoS ONE, 8, p. 6
Gillooly, JF, Brown, JH, West, GB, Savage, VM, Charnov, EL., Effects of size and temperature on metabolic rate (2001) Science, 293, pp. 2248-2251
Guderly, H., Metabolic responses to low temperature in fish muscle (2004) Biol Rev, 79, pp. 409-427
Herrel, A, Bonneaud, C., Temperature dependence of locomotor performance in the tropical clawed frog, Xenopus tropicalis (2012) J Exp Biol, 215, pp. 2465-2470
Herrel, A, James, RS, Van Damme, R., Fight versus flight: physiological basis for temperature dependent behavioral shifts in lizards (2007) J Exp Biol, 210, pp. 1762-1767
Herrel, A, Gonwouo, LN, Fokam, EB, Ngundu, WI, Bonneaud, C., Intersexual differences in body shape and locomotor performance in the aquatic frog, Xenopus tropicalis (2012) J Zool, 287, pp. 311-316
Herrel, A, Vasilopoulou-Kampitsi, M, Bonneaud, C., Jumping performance in the highly aquatic frog, Xenopus tropicalis: sex-specific relationships between morphology and performance (2014) PeerJ, 2, p. e661
Hirano, M, Rome, LC., Jumping performance of frogs (Rana pipiens) as a function of muscle temperature (1984) J Exp Biol, 108, pp. 429-439
Huey, RB, Kingsolver, JG., Evolution of resistance to high temperature in ectotherms (1993) Am Nat, 142, pp. S21-S46
Huey, RB, Stevenson, RD., Integrating thermal physiology and ecology of ectotherms: a discussion of approaches (1979) Am Zool, 19, pp. 357-366
Hulbert, AJ, Else, PL., Mechanisms underlying the cost of living in animals (2000) Annu Rev Physiol, 62, pp. 207-235
Ihlow, F, Courant, J, Secondi, J, Herrel, A, Rebelo, R, Measey, GJ, Lillo, F, De Busschere, C, Impacts of climate change on the global invasion potential of the African clawed frog Xenopus laevis (2016) PLoS ONE, 11, p. e0154869
James, RS, Navas, CA, Herrel, A., How important are skeletal muscle mechanics in setting limits on jumping performance? (2007) J Exp Biol, 210, pp. 923-933
James, RS, Tallis, J, Herrel, A, Bonneaud, C., Warmer is better: thermal sensitivity of both maximal and sustained power output in the iliotibialis muscle isolated from adult Xenopus tropicalis (2012) J Exp Biol, 215, pp. 552-558
John-Alder, HB, Barnhart, MC, Bennett, AF., Thermal sensitivity of swimming performance and muscle contraction in northern and southern populations of tree frogs (1989) J Exp Biol, 142, pp. 357-372
Johnston, IA, Temple, GK., Thermal plasticity of skeletal muscle phenotype in ectothermic vertebrates and its significance for locomotory behaviour (2002) J Exp Biol, 205, pp. 2305-2322
Kruger, N, Measey, J, Herrel, A, Secondi, J., Anti-predator strategies of the invasive African clawed frog, Xenopus laevis, to native and invasive predators in western France (2019) Aqua Invas, 14, pp. 433-443
Lavergne, S, Molofsky, J., Increased genetic variation and evolutionary potential drive the success of an invasive grass (2007) Proc Natl Acad Sci U S A, 104, pp. 3883-3888
Liendo, D, Biurrun, I, Campos, JA, Herrera, M, Loidi, J, Garcıa-Mijangos, I., Invasion patterns in riparian habitats: the role of anthropogenic pressure in temperate streams (2015) Plant Biosyst, 149, pp. 289-297
Lodge, DM., Biological invasions: lessons for ecology (1993) Trends Ecol Evol, 8, pp. 133-137
Louppe, V, Courant, J, Herrel, A., Differences in mobility at the range edge of an expanding invasive population of Xenopus laevis in the west of France (2017) J Exp Biol, 220, pp. 278-283
Louppe, V, Courant, J, Videlier, M, Herrel, A., Differences in standard metabolic rate at the range edge versus the center of an expanding invasive population of Xenopus laevis in the West of France (2018) J Zool, 305, pp. 163-172
Mack, RN, Simberloff, D, Lonsdale, WM, Evans, H, Clout, M, Bazzaz, FA., Biotic invasions: causes, epidemiology, global consequences, and control (2000) Ecol Appl, 10, p. 22
Magnuson, JJ, Crowder, LB, Medvick, PA., Temperature as an ecological resource (1979) Am Zool, 19, pp. 331-343
Maron, JL, Vila, M, Bommarco, R, Elmendorf, S, Beardsley, P., Rapid evolution of an invasive plant (2004) Ecol Monogr, 74, pp. 261-280
Martin, TL, Huey, RB., Why “suboptimal” is optimal: Jensen’s inequality and ectotherm thermal preferences (2008) Am Nat, 171, pp. E102-E118
Measey, GJ, Rödder, D, Green, SL, Kobayashi, R, Lillo, F, Lobos, G, Rebelo, R, Thirion, J-M., Ongoing invasions of the African clawed frog, Xenopus laevis: a global review (2012) Biol Invas, 14, pp. 2255-2270
Navas, CA, Gomes, FR, Carvalho, JE., Thermal relationships and exercise physiology in anuran amphibians: integration and evolutionary implications (2008) Comp Biochem Physiol A, 151, pp. 344-362
Novak, SJ., The role of evolution in the invasion process (2007) Proc Natl Acad Sci U S A, 104, pp. 3671-3672
Osborn, TJ, Briffa, KR., The spatial extent of 20th-cen-tury warmth in the context of the past 1200 years (2006) Science, 311, pp. 841-844
Padilla, P, Ducret, V, Bonneaud, C, Courant, J, Herrel, A., Acclimation temperature effects on locomotor traits in adult aquatic anurans (X. tropicalis and X. laevis) from different latitudes: possible implications for climate change (2019) Conserv Physiol, 7, p. coz019
Padilla, P, Courant, J, Herrel, A., Allocation trade-offs impact organ size and muscle architecture in an invasive population of Xenopus laevis in Western France (2019) J Anat, 235, pp. 1057-1064
Pigliucci, M., Evolution of phenotypic plasticity: where are we going now? (2005) Trends Ecol Evol, 20, pp. 481-486
Prentis, PJ, Wilson, JRU, Dormontt, EE, Richardson, DM, Lowe, AJ., Adaptive evolution in invasive species (2008) Trends Plant Sci, 13, pp. 288-294
Rödder, D, Ihlow, F, Courant, J, Secondi, J, Herrel, A, Rebelo, R, Measey, GJ, Busschere, CD, Global realized niche divergence in the African clawed frog Xenopus laevis (2017) Ecol Evol, 7, pp. 4044-4058
(2019) R: a language and environment for statistical computing, , R Core Team. Vienna, Austria: R Foundation for Statistical Computing
Richardson, DM, Pysek, P., Plant invasions: merging the concepts of species invasiveness and community invasibility (2006) Prog Phys Geogr Earth Environ, 30, pp. 409-431
Seebens, H, Blackburn, TM, Dyer, EE, Genovesi, P, Hulme, PE, Jeschke, JM, Pagad, S, Arianoutsou, M, No saturation in the accumulation of alien species worldwide (2017) Nat Commun, 8, p. 14435
Seymour, RS., Behavioral thermoregulation by juvenile green toads, Bufo debilis (1972) Copeia, 1972, pp. 572-575
Shine, R, Brown, GP, Philllips, BL., An evolutionary process that assembles phenotypes through space rather than through time (2011) Proc Natl Acad Sci U S A, 108, pp. 5708-5711
Simberloff, D, Gibbons, L., Now you see them, now you don’t!—population crashes of established introduced species (2004) Biol Inv, 6, pp. 161-172
Simberloff, D, Martin, J-L, Genovesi, P, Maris, V, Wardle, DA, Aronson, J, Courchamp, F, Pascal, M, Impacts of biological invasions: what’s what and the way forward (2013) Trends Ecol Evol, 28, pp. 58-66
Sinclair, BJ, Marshall, KE, Sewell, MA, Levesque, DL, Willett, CS, Slotsbo, S, Dong, Y, Helmuth, BS, Can we predict ectotherm responses to climate change using thermal performance curves and body temperatures? (2016) Ecol Lett, 19, pp. 1372-1385
Sinervo, B, Mendez-de-la-Cruz, F, Miles, DB, Heulin, B, Bastiaans, E, Villagran-Santa Cruz, M, Lara-Resendiz, R, Meza-Lazaro, RN, Erosion of lizard diversity by climate change and altered thermal niches (2010) Science, 328, pp. 894-899
Stevens, VM, Pavoine, S, Baguette, M., Variation within and between closely related species uncovers high intraspecific variability in dispersal (2010) PLoS ONE, 5, p. e11123
Sunday, JM, Bates, AE, Dulvy, NK., Global analysis of thermal tolerance and latitude in ectotherms (2011) Proc R Soc B, 278, pp. 1823-1830
Urban, MC, Phillips, BL, Skelly, DK, Shine, R., The cane toad’s (Chaunus [Bufo] marinus) increasing ability to invade Australia is revealed by a dynamically updated range model (2007) Proc R Soc B, 274, pp. 1413-1419
Urban, MC, Richardson, JL, Freidenfelds, NA., Plasticity and genetic adaptation mediate amphibian and reptile responses to climate change (2014) Evol Appl, 7, pp. 88-103
Van Berkum, FH., Evolutionary patterns of the thermal sensitivity of sprint speed in Anolis lizards (1986) Evolution, 40, pp. 594-604
Van Damme, R, Bauwens, D, Verheyen, RF., The thermal dependence of feeding behaviour, food consumption and gut-Passage time in the lizard Lacerta vivipara, Jacquin (1991) Funct Ecol, 5, p. 507
Vimercati, G, Labadesse, M, Dejean, T, Secondi, J., Assessing the effect of landscape features on pond colonisation by an elusive amphibian invader using environmental DNA (2019) Freshw Biol published online
Whitford, WG., The effects of temperature on respiration in the amphibia (1973) Am Zool, 13, pp. 505-512
Wilson, RS., Geographic variation in thermal sensitivity of jumping performance in the frog Limnodynastes peronii (2001) J Exp Biol, 204, pp. 4227-4236
Zenni, RD, Nuñez, MA., The elephant in the room: the role of failed invasions in understanding invasion biology (2013) Oikos, 122, pp. 801-815