Published May 27, 2024
| Version v1
Journal article
Open
Morphology and metabolic traits related to swimming performance in Australasian snapper (Chrysophrys auratus) selected for fast growth
Authors/Creators
- 1. Seafood Production Group, The New Zealand Institute for Plant and Food Research Limited, Nelson, New Zealand
- 2. Seafood Production Group, The New Zealand Institute for Plant and Food Research Limited, Nelson, New Zealand & Leigh Marine Laboratory, Institute of Marine Science, University of Auckland, Auckland, New Zealand
- 3. Seafood Production Group, The New Zealand Institute for Plant and Food Research Limited, Nelson, New Zealand & School of Biological Sciences, University of Auckland, Auckland, New Zealand
Description
Magnoni, Leonardo J., Collins, Selwyn P., Wylie, Matthew J., Black, Suzanne E., Wellenreuther, Maren (2024): Morphology and metabolic traits related to swimming performance in Australasian snapper (Chrysophrys auratus) selected for fast growth. Journal of Fish Biology 105 (1): 358-371, DOI: 10.1111/jfb.15807, URL: https://doi.org/10.1111/jfb.15807
Files
source.pdf
Files
(2.3 MB)
| Name | Size | Download all |
|---|---|---|
|
md5:796e1a27fc66335f4f71636b9158c952
|
2.3 MB | Preview Download |
Linked records
Additional details
Identifiers
- LSID
- urn:lsid:plazi.org:pub:796E1A27FC66335F4F71636B9158C952
References
- Arechavala-Lopez, P., Sanchez-Jerez, P., Bayle-Sempere, J. T., Sfakianakis, D. G., & Somarakis, S. (2012). Morphological differences between wild and farmed Mediterranean fish. Hydrobiologia, 679, 217-231.
- Ashton, D. T., Hilario, E., Jaksons, P., Ritchie, P. A., & Wellenreuther, M. (2019). Genetic diversity and heritability of economically important traits in captive Australasian snapper (Chrysophrys auratus). Aquaculture, 505, 190-198.
- Basaran, F., Ozbilgin, H., & Ozbilgin, Y. D. (2007). Comparison of the swimming performance of farmed and wild gilthead sea bream, Sparus aurata. Aquaculture Research, 38, 452-456.
- Beamish, F. W. H. (1978). Swimming capacity. In W. S. Hoar & D. J. Randall (Eds.), Fish physiology (Vol. 7, pp. 101-187). Academic Press.
- Bell, W. H. (1970). Water tunnel design for fisheries research: Nanaimo. B.C.
- Besson, M., Komen, H., Rose, G., & Vandeputte, M. (2020). The genetic correlation between feed conversion ratio and growth rate affects the design of a breeding program for more sustainable fish production. Genetics Selection Evolution, 52, 5.
- Binning, S. A., Roche, D. G., & Fulton, C. J. (2014). Localised intraspecific variation in the swimming phenotype of a coral reef fish across different wave exposures. Oecologia, 174, 623-630.
- Binning, S. A., Ros, A. F. H., Nusbaumer, D., & Roche, D. G. (2015). Physiological plasticity to water flow habitat in the damselfish, Acanthochromis polyacanthus: Linking phenotype to performance. PLoS One, 10, e0121983.
- Brett, J. R. (1964). The respiratory metabolism and swimming performance of young sockeye Salmon. Journal of the Fisheries Research Board of Canada, 21, 1183-1226.
- Brett, J. R. (1967). Swimming performance of sockeye salmon (Oncorhynchus nerka) in relation to fatigue time and temperature. Journal of the Fisheries Research Board of Canada, 24, 1731-1741.
- Chiba, S. N., Iwatsuki, Y., Yoshino, T., & Hanzawa, N. (2009). Comprehensive phylogeny of the family Sparidae (Perciformes: Teleostei) inferred from mitochondrial gene analyses. Genes & Genetic Systems, 84, 153-170.
- Choi, K., & Weber, J.-M. (2016). Coping with an exogenous glucose overload: Glucose kinetics of rainbow trout during graded swimming. American Journal of Physiology-Regulatory, Integrative and Comparative Physiology, 310, R493-R501.
- Coxon, S. E. (2014). The exercise physiology of snapper (Pagrus auratus): Implications for the better commercial harvesting of an iconic New Zealand finfish. In Biological Sciences, vol. PhD Thesis, (p. 248). University of Canterbury.
- de Oliveira, C. A. L., Ribeiro, R. P., Yoshida, G. M., Kunita, N. M., Rizzato, G. S., de Oliveira, S. N., dos Santos, A. I., & Nguyen, N. H. (2016). Correlated changes in body shape after five generations of selection to improve growth rate in a breeding program for Nile tilapia Oreochromis niloticus in Brazil. Journal of Applied Genetics, 57, 487-493.
- de Verdal, H., Mekkawy, W., Lind, C. E., Vandeputte, M., Chatain, B., & Benzie, J. A. H. (2017). Measuring individual feed efficiency and its correlations with performance traits in Nile tilapia, Oreochromis niloticus. Aquaculture, 468, 489-495.
- Fleming, I. A., Jonsson, B., & Gross, M. R. (1994). Phenotypic divergence of sea-ranched, farmed, and wild Salmon. Canadian Journal of Fisheries and Aquatic Sciences, 51, 2808-2824.
- Fragkoulis, S., Kerasovitis, D., Batargias, C., & Koumoundouros, G. (2021). Body-shape trajectories and their genetic variance component in gilthead seabream (Sparus aurata L.). Scientific Reports, 11, 16964.
- Gjedrem, T., Robinson, N., & Rye, M. (2012). The importance of selective breeding in aquaculture to meet future demands for animal protein: A review. Aquaculture, 350-353, 117-129.
- Gjedrem, T., & Rye, M. (2018). Selection response in fish and shellfish: A review. Reviews in Aquaculture, 10, 168-179.
- Goolish, E. M. (1989). The scaling of aerobic and anaerobic muscle power in rainbow trout (Salmo Gairdneri). Journal of Experimental Biology, 147, 493-505.
- Grunbaum, T., Cloutier, R., Mabee, P. M., & Le FranCois, N. R. (2007). Early developmental plasticity and integrative responses in arctic charr (Salvelinus alpinus): Effects of water velocity on body size and shape. Journal of Experimental Zoology Part B: Molecular and Developmental Evolution, 308B, 396-408.
- Haas, T. C., Blum, M. J., & Heins, D. C. (2010). Morphological responses of a stream fish to water impoundment. Biology Letters, 6, 803-806.
- Kieffer, J. D. (2010). Perspective -Exercise in fish: 50+ years and going strong. Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology, 156, 163-168.
- Killen, S. S., Marras, S., Nadler, L., & Domenici, P. (2017). The role of physiological traits in assortment among and within fish shoals. Philosophical Transactions of the Royal Society B: Biological Sciences, 279, 20160233.
- Killen, S. S., Marras, S., Steffensen, J. F., & McKenzie, D. J. (2012). Aerobic capacity influences the spatial position of individuals within fish schools. Proceedings of the Royal Society B: Biological Sciences, 279, 357-364.
- Langerhans, R. B. (2008). Predictability of phenotypic differentiation across flow regimes in fishes. Integrative and Comparative Biology, 48, 750-768.
- Lu, Y., Wu, H., Deng, L.-J., Li, T.-C., Yang, K., Fu, S.-J., & Song, Z.-B. (2020). Improved aerobic and anaerobic swimming performance after exercise training and detraining in Schizothorax wangchiachii: Implications for fisheries releases. Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology, 245, 110698.
- Mateus, C. S., Quintella, B. R., & Almeida, P. R. (2008). The critical swimming speed of Iberian barbel Barbus bocagei in relation to size and sex. Journal of Fish Biology, 73, 1783-1789.
- Mengistu, S. B., Mulder, H. A., Benzie, J. A., Khaw, H. L., Megens, H.-J., Trinh, T. Q., & Komen, H. (2020). Genotype by environment interaction between aerated and non-aerated ponds and the impact of aeration on genetic parameters in Nile tilapia (Oreochromis niloticus). Aquaculture, 529, 735704.
- Mengistu, S. B., Palstra, A. P., Mulder, H. A., Benzie, J. A. H., Trinh, T. Q., Roozeboom, C., & Komen, H. (2021). Heritable variation in swimming performance in Nile tilapia (Oreochromis niloticus) and negative genetic correlations with growth and harvest weight. Scientific Reports, 11, 11018.
- Milligan, C. L., & Girard, S. S. (1993). Lactate metabolism in rainbow trout. Journal of Experimental Biology, 180, 175-193.
- Milligan, C. L., Hooke, G. B., & Johnson, C. (2000). Sustained swimming at low velocity following a bout of exhaustive exercise enhances metabolic recovery in rainbow trout. The Journal of Experimental Biology, 203, 921-926.
- Milligan, C. L., & Mcdonald, D. G. (1988). In vivo lactate kinetics at rest and during recovery from exhaustive exercise in Coho Salmon (Oncorhynchus Kisutch) and starry flounder (Platichthys Stellatus). Journal of Experimental Biology, 135, 119-131.
- Moran, D., Schleyken, J., Flammensbeck, C., Fantham, W., Ashton, D., & Wellenreuther, M. (2023). Enhanced survival and growth in the selectively bred Chrysophrys auratus (Australasian snapper, tamure). Aquaculture, 563, 738970.
- Oufiero, C. E., & Whitlow, K. R. (2016). The evolution of phenotypic plasticity in fish swimming. Current Zoology, 62, 475-488.
- Pagnotta, A., & Milligan, C. L. (1991). The role of blood glucose in the restoration of muscle glycogen during recovery from exhaustive exercise in rainbow trout (Oncorhynchus Mykiss) and winter flounder (Pseudopleuronectes Americanus). Journal of Experimental Biology, 161, 489-508.
- Pakkasmaa, S., & Piironen, J. (2000). Water velocity shapes juvenile salmonids. Evolutionary Ecology, 14, 721-730.
- Parsons, D. M., Sim-Smith, C. J., Cryer, M., Francis, M. P., Hartill, B., Jones, E. G., Le Port, A., Lowe, M., McKenzie, J., Morrison, M., Paul, L. J., Radford, C., Ross, P. M., Spong, K. T., Trnski, T., Usmar, N., Walsh, C., & Zeldis, J. (2014). Snapper (Chrysophrys auratus): A review of life history and key vulnerabilities in New Zealand. New Zealand Journal of Marine and Freshwater Research, 48, 256-283.
- Peake, S. J., & Farrell, A. P. (2004). Locomotory behaviour and post-exercise physiology in relation to swimming speed, gait transition and metabolism in free-swimming smallmouth bass(Micropterus dolomieu). Journal of Experimental Biology, 207, 1563-1575.
- Pedersen, L.-F., Koed, A., & Malte, H. (2008). Swimming performance of wild and F1-hatchery-reared Atlantic salmon (Salmo salar) and brown trout (Salmo trutta) smolts. Ecology of Freshwater Fish, 17, 425-431.
- Pulcini, D., Wheeler, P. A., Cataudella, S., Russo, T., & Thorgaard, G. H. (2013). Domestication shapes morphology in rainbow trout Oncorhynchus mykiss. Journal of Fish Biology, 82, 390-407.
- Remen, M., Solstorm, F., Bui, S., Klebert, P., Vagseth, T., Solstorm, D., Hvas, M., & Oppedal, F. (2016). Critical swimming speed in groups of Atlantic salmon Salmo Salar. Aquaculture Environment Interactions, 8, 659-664.
- Rohlf, F. (2017). TpsDig stony brook. Department of Ecology and Evolution, State University of New York at Stony Brook.
- Rubio-Gracia, F., Garcia-Berthou, E., Latorre, D., Moreno-Amich, R., Srean, P., Luo, Y., & Vila-Gispert, A. (2020). Differences in swimming performance and energetic costs between an endangered native toothcarp (Aphanius iberus) and an invasive mosquitofish (Gambusia holbrooki). Ecology of Freshwater Fish, 29, 230-240.
- Solem, O., Berg, O. K., & KjOsnes, A. J. (2006). Inter- and intra-population morphological differences between wild and farmed Atlantic salmon juveniles. Journal of Fish Biology, 69, 1466-1481.
- Srean, P., Almeida, D., Rubio-Gracia, F., Luo, Y., & Garcia-Berthou, E. (2017). Effects of size and sex on swimming performance and metabolism of invasive mosquitofish Gambusia holbrooki. Ecology of Freshwater Fish, 26, 424-433.
- Stringwell, R., Lock, A., Stutchbury, C. J., Baggett, E., Taylor, J., Gough, P. J., & Garcia de Leaniz, C. (2014). Maladaptation and phenotypic mismatch in hatchery-reared Atlantic salmon Salmo salar released in the wild. Journal of Fish Biology, 85, 1927-1945.
- Talijanˇcic, I., Zu ˇzul ˇ, I., Kiridzija ˇ, V., Siljic ˇ, J., Pleadin, J., Grubisic ˇ, L., & Segvic- ˇ Bubic, T. (2021). Plastic responses of gilthead seabream Sparus aurata to wild and aquaculture pressured environments. Frontiers in marine. Science, 8, 694627.
- Tiffan, K. F., & Connor, W. P. (2011). Distinguishing between natural and hatchery Snake River fall Chinook Salmon subyearlings in the field using body morphology. Transactions of the American Fisheries Society, 140, 21-30.
- Tuckey, N. P. L., Ashton, D. T., Li, J., Lin, H. T., Walker, S. P., Symonds, J. E., & Wellenreuther, M. (2022). Automated image analysis as a tool to measure individualised growth and population structure in Chinook salmon (Oncorhynchus tshawytscha). Aquaculture, Fish and Fisheries, 2, 402-413.
- van Ginneken, V., Boot, R., Murk, T., van den Thillart, G., & Balm, P. (2004). Blood plasma substrates and muscle lactic-acid response after exhaustive exercise in common carp and trout: Indications for a limited lactate-shuttle. Animal Biology, 54, 119-130.
- Vandeputte, M., Gagnaire, P.-A., & Allal, F. (2019). The European sea bass: A key marine fish model in the wild and in aquaculture. Animal Genetics, 50, 195-206.
- Vandeputte, M., Porte, J. D., Auperin, B., Dupont-Nivet, M., Vergnet, A., Valotaire, C., Claireaux, G., Prunet, P., & Chatain, B. (2016). Quantitative genetic variation for post-stress cortisol and swimming performance in growth-selected and control populations of European sea bass (Dicentrarchus labrax). Aquaculture, 455, 1-7.
- Wang, Y., Heigenhauser, G. J. F., & Wood, C. M. (1994). Integrated responses to exhaustive exercise and recovery in rainbow trout white muscle: Acid -Base, Phosphogen, carbohydrate, lipid, ammonia, fluid volume and electrolyte metabolism. Journal of Experimental Biology, 195, 227-258.
- Wellenreuther, M., Le Luyer, J., Cook, D., Ritchie, P. A., & Bernatchez, L. (2019). Domestication and temperature modulate gene expression signatures and growth in the Australasian snapper Chrysophrys auratus. G3 Genes j Genomes j Genetics, 9, 105-116.
- Wells, R. M. G., & Baldwin, J. (2006). Plasma lactate and glucose flushes following burst swimming in silver trevally (Pseudocaranx dentex: Carangidae) support the "releaser" hypothesis. Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology, 143, 347-352.
- Wiwchar, L. D., Gilbert, M. J. H., Kasurak, A. V., & Tierney, K. B. (2018). Schooling improves critical swimming performance in zebrafish (Danio rerio). Canadian Journal of Fisheries and Aquatic Sciences, 75, 653-661.
- Wringe, B. F., Fleming, I. A., & Purchase, C. F. (2015). Rapid morphological divergence of cultured cod of the northwest Atlantic from their source population. Aquaculture Environment Interactions, 7, 167-177.
- Yu, X., Mengistu, S. B., Mulder, H. A., Palstra, A. P., Benzie, J. A. H., Trinh, T. Q., Groenen, M. A. M., Komen, H., & Megens, H.-J. (2022a). Quantitative trait loci controlling swimming performance and their effect on growth in Nile tilapia (Oreochromis niloticus). Aquaculture, 560, 738522.
- Yu, X., Sousa, V. F. M. F., Oliveira, B. M., Guardiola, F. A., Silva-Brito, F., Ozorio, R. O. A., Valente, L. M. P., & Magnoni, L. J. (2022b). Induced sustained swimming modifies the external morphology, increasing the oxygen-carrying capacity and plasma lactate levels of juvenile gilthead seabream (Sparus aurata) without changing fish performance or skeletal muscle characteristics. Aquaculture, 560, 738503.