R. L. Naylor, R. W. Hardy, D. P. Bureau, A. Chiu, and M. Elliott, Feeding aquaculture in an era of finite resources, Proc Natl Acad Sci, vol.106, pp.15103-15110, 2009.

D. M. Gatlin, F. T. Barrows, P. Brown, K. Dabrowski, and T. G. Gaylord, Expanding the utilization of sustainable plant products in aquafeeds: a review, Aquac Res, vol.38, pp.551-579, 2007.

F. T. Barrows, D. Bellis, Å. Krogdahl, J. T. Silverstein, and E. M. Herman, Report of the Plant Products in Aquafeed Strategic Planning Workshop: An integrated, interdisciplinary research roadmap for increasing utilization of plant feedstuffs in diets for carnivorous fish, Rev Fish Sci, vol.16, pp.449-455, 2008.

K. Hua and D. P. Bureau, Exploring the possibility of quantifying the effects of plant protein ingredients in fish feeds using meta-analysis and nutritional model simulation-based approaches, Aquaculture, vol.356, pp.284-301, 2012.

B. Glencross, D. Evans, N. Rutherford, W. Hawkins, and P. Mccafferty, The influence of the dietary inclusion of the alkaloid gramine, on rainbow trout (Oncorhynchus mykiss) growth, feed utilisation and gastrointestinal histology, Aquaculture, vol.253, pp.512-522, 2006.

E. Serrano, T. Storebakken, M. Penn, M. Øverland, and J. Ø. Hansen, Responses in rainbow trout (Oncorhynchus mykiss) to increasing dietary doses of lupinine, the main quinolizidine alkaloid found in yellow lupins (Lupinus luteus), Aquaculture, vol.318, pp.122-127, 2011.

D. P. Bureau, A. M. Harris, Y. Cho, and C. , The effects of purified alcohol extracts from soy products on feed intake and growth of chinook salmon (Oncorhynchus tshawytscha) and rainbow trout (Oncorhynchus mykiss), Aquaculture, vol.161, pp.27-43, 1998.

J. Wacyk, M. Powell, K. Rodnick, K. Overturf, and R. A. Hill, Dietary protein source significantly alters growth performance, plasma variables and hepatic gene expression in rainbow trout (Oncorhynchus mykiss) fed amino acid balanced diets, Aquaculture, vol.356, pp.223-234, 2012.

T. Van-den-ingh, J. J. Olli, and Å. Krogdahl, Alcohol-soluble components in soybeans cause morphological changes in the distal intestine of Atlantic salmon, Salmo salar L, J Fish Dis, vol.19, pp.47-53, 1996.

Å. Krogdahl, A. M. Bakke-mckellep, and G. Baeverfjord, Effects of graded levels of standard soybean meal on intestinal structure, mucosal enzyme activities, and pancreatic response in Atlantic salmon, Salmo salar L.). Aquac Nutr, vol.9, pp.361-371, 2003.

G. M. Turchini, B. E. Torstensen, and W. Ng, Fish oil replacement in finfish nutrition, Rev Aquac, vol.1, pp.10-57, 2009.

I. Geurden, A. Cuvier, E. Gondouin, R. Olsen, and K. Ruohonen, Rainbow trout can discriminate between feeds with different oil sources, Physiol Behav, vol.85, pp.107-114, 2005.
URL : https://hal.archives-ouvertes.fr/hal-02680400

A. Pettersson, L. Johnsson, E. Brä-nnä-s, and J. Pickova, Effects of rapeseed oil replacement in fish feed on lipid composition and self-selection by rainbow trout (Oncorhynchus mykiss), Aquac Nutr, vol.15, pp.577-586, 2009.

L. R. Pierce, Y. Palti, J. T. Silverstein, F. T. Barrows, and E. M. Hallerman, Family growth response to fishmeal and plant-based diets shows genotype6diet interaction in rainbow trout (Oncorhynchus mykiss), Aquaculture, vol.278, pp.37-42, 2008.

L. Boucher, R. Dupont-nivet, M. Vandeputte, M. Kerneïs, T. Goardon et al., Selection for adaptation to dietary shifts: towards sustainable breeding of carnivorous fish, Plos One, vol.7, p.44898, 2012.
URL : https://hal.archives-ouvertes.fr/hal-01000610

L. Boucher, R. Quillet, E. Vandeputte, M. Lecalvez, J. M. Goardon et al., Plant-based diet in rainbow trout (Oncorhynchus mykiss Walbaum): Are there genotype-diet interactions for main production traits when fish are fed marine vs. plant-based diets from the first meal, Aquaculture, vol.321, pp.41-48, 2011.
URL : https://hal.archives-ouvertes.fr/hal-01000179

K. Overturf, F. T. Barrows, and R. W. Hardy, Effect and interaction of rainbow trout strain (Oncorhynchus mykiss) and diet type on growth and nutrient retention, Aquac Res, vol.44, pp.604-611, 2013.

A. Lucas, Programming by Early Nutrition: An Experimental Approach, J Nutr, vol.128, pp.401-406, 1998.

K. A. Lillycrop and G. C. Burdge, Epigenetic mechanisms linking early nutrition to long term health, Best Pract Res Clin Endocrinol Metab, vol.26, pp.667-676, 2012.

C. J. Petry, S. E. Ozanne, and C. N. Hales, Programming of intermediary metabolism, Mol Cell Endocrinol, vol.185, pp.81-91, 2001.

P. D. Gluckman and M. A. Hanson, Developmental and epigenetic pathways to obesity: an evolutionary-developmental perspective, Int J Obes, vol.32, pp.62-71, 2008.

R. A. Waterland and R. L. Jirtle, Transposable elements: targets for early nutritional effects on epigenetic gene regulation, Mol Cell Biol, vol.23, pp.5293-5300, 2003.

M. S. Patel and M. Srinivasan, Metabolic programming: causes and consequences, J Biol Chem, vol.277, pp.1629-1632, 2002.

I. Geurden, M. Aramendi, J. Zambonino-infante, and S. Panserat, Early feeding of carnivorous rainbow trout (Oncorhynchus mykiss) with a hyperglucidic diet during a short period: effect on dietary glucose utilization in juveniles, Am J Physiol -Regul Integr Comp Physiol, vol.292, pp.2275-2283, 2007.
URL : https://hal.archives-ouvertes.fr/hal-02658514

M. Vagner, Z. Infante, J. L. Robin, J. H. Person-le-ruyet, and J. , Is it possible to influence European sea bass (Dicentrarchus labrax) juvenile metabolism by a nutritional conditioning during larval stage, Aquaculture, vol.267, pp.165-174, 2007.
URL : https://hal.archives-ouvertes.fr/hal-01455026

M. Vagner, J. H. Robin, J. L. Zambonino-infante, D. R. Tocher, and J. Person-le-ruyet, Ontogenic effects of early feeding of sea bass (Dicentrarchus labrax) larvae with a range of dietary n-3 highly unsaturated fatty acid levels on the functioning of polyunsaturated fatty acid desaturation pathways, Br J Nutr, vol.101, pp.1452-1462, 2009.
URL : https://hal.archives-ouvertes.fr/hal-01455045

S. Graven and J. Browne, Sensory Development in the Fetus, Neonate, and Infant: Introduction and Overview, Newborn Infant Nurs Rev, vol.8, pp.169-172, 2008.

R. M. London, C. T. Snowdon, and J. M. Smithana, Early experience with sour and bitter solutions increases subsequent ingestion, Physiol Behav, vol.22, pp.1149-1155, 1979.

S. L. Youngentob and J. I. Glendinning, Fetal ethanol exposure increases ethanol intake by making it smell and taste better, Proc Natl Acad Sci, vol.106, pp.5359-5364, 2009.

G. K. Beauchamp and J. A. Mennella, Early flavor learning and its impact on later feeding behavior, J Pediatr Gastroenterol Nutr, vol.48, pp.25-30, 2009.

T. J. Hara and B. Zielinski, Structural and functional development of the olfactory organ in teleosts, Trans Am Fish Soc, vol.118, pp.183-194, 1989.

A. O. Kasumyan and K. B. Døving, Taste preferences in fishes, Fish Fish, vol.4, pp.289-347, 2003.

, Nutrient requirements of fish and shrimp, 2011.

E. Quillet, M. Dorson, L. Guillou, S. Benmansour, A. Boudinot et al., Wide range of susceptibility to rhabdoviruses in homozygous clones of rainbow trout, Fish Shellfish Immunol, vol.22, pp.510-519, 2007.
URL : https://hal.archives-ouvertes.fr/hal-02658950

I. Martín, A. Gómez, C. Salas, A. Puerto, and F. Rodríguez, Dorsomedial pallium lesions impair taste aversion learning in goldfish, Neurobiol Learn Mem, vol.96, pp.297-305, 2011.

Y. B. Manteifel and M. A. Karelina, Conditioned food aversion in the goldfish, Carassius auratus, Comp Biochem Physiol A Physiol, vol.115, pp.31-35, 1996.

P. Simões, S. R. Ott, and J. E. Niven, A long-latency aversive learning mechanism enables locusts to avoid odours associated with the consequences of ingesting toxic food, J Exp Biol, vol.215, pp.1711-1719, 2012.

F. D. Provenza, Post-ingestive feedback as an elementary determinant of food preference and intake in ruminants, J Range Manag, vol.48, pp.2-17, 2006.

I. Kyriazakis, D. H. Anderson, and A. J. Duncan, Conditioned flavour aversions in sheep: the relationship between the dose rate of a secondary plant compound and the acquisition and persistence of aversions, Br J Nutr, vol.79, pp.55-62, 1998.

K. Ueji and T. Yamamoto, Flavor learning in weanling rats and its retention, Physiol Behav, vol.106, pp.417-422, 2012.

P. G. Hepper, D. L. Wells, S. Millsopp, K. Kraehenbuehl, and S. A. Lyn, Prenatal and early sucking influences on dietary preference in newborn, weaning, and young adult cats, Chem Senses, vol.37, pp.755-766, 2012.

T. J. Hara, Feeding behaviour in some teleosts is triggered by single amino acids primarily through olfaction, J Fish Biol, vol.68, pp.810-825, 2006.

W. J. Wisby and A. D. Hasler, Effect of olfactory occlusion on migrating silver salmon (O. kisutch), J Fish Res Board Can, vol.11, pp.472-478, 1954.

A. T. Scholz, R. M. Horrall, J. C. Cooper, and A. D. Hasler, Imprinting to chemical cues: The basis for home stream selection in salmon, Science, vol.192, pp.1247-1249, 1976.

H. Ueda, Physiological mechanisms of imprinting and homing migration in Pacific salmon Oncorhynchus spp, J Fish Biol, vol.81, pp.543-558, 2012.

Y. Yamamoto, H. Hino, and H. Ueda, Olfactory imprinting of amino acids in lacustrine sockeye salmon, Plos One, vol.5, p.8633, 2010.

A. H. Dittman, T. P. Quinn, and G. A. Nevitt, Timing of imprinting to natural and artificial odors by coho salmon (Oncorhynchus kisutch), Can J Fish Aquat Sci, vol.53, pp.434-442, 1996.

J. C. Cooper, A. T. Scholz, R. M. Horrall, A. D. Hasler, and D. M. Madison, Experimental confirmation of the olfactory hypothesis with homing, artificially imprinted coho salmon (Oncorhynchus kisutch), J Fish Res Board Can, vol.33, pp.703-710, 1976.

T. Shoji, Y. Yamamoto, D. Nishikawa, K. Kurihara, and H. Ueda, Amino acids in stream water are essential for salmon homing migration, Fish Physiol Biochem, vol.28, pp.249-251, 2003.

K. A. Johnstone, K. P. Lubieniecki, B. F. Koop, and W. S. Davidson, Expression of olfactory receptors in different life stages and life histories of wild Atlantic salmon (Salmo salar), Mol Ecol, vol.20, pp.4059-4069, 2011.

K. D. Welch, F. D. Provenza, J. A. Pfister, J. Rogo?iç, A. Rosati et al., Do plant secondary compounds induce epigenetic changes that confer resistance or susceptibility to toxicosis in animals? In: Casasús I, Animal farming and environmental interactions in the Mediterranean region. Forages and grazing in horse nutrition, vol.131, pp.33-44, 2012.

M. Dupont-nivet, F. Médale, J. Leonard, L. Guillou, S. Tiquet et al., Evidence of genotype-diet interactions in the response of rainbow trout (Oncorhynchus mykiss) clones to a diet with or without fishmeal at early growth, Aquaculture, vol.295, pp.15-21, 2009.
URL : https://hal.archives-ouvertes.fr/hal-01193406

T. Storebakken and E. Austreng, Ration level for salmonids: II. Growth, feed intake, protein digestibility, body composition, and feed conversion in rainbow trout weighing 0.5-1.0 kg, Aquaculture, vol.60, pp.207-221, 1987.

Y. Wang, L. Kong, K. Li, and D. P. Bureau, Effects of feeding frequency and ration level on growth, feed utilization and nitrogen waste output of cuneate drum (Nibea miichthioides) reared in net pens, Aquaculture, vol.271, pp.350-356, 2007.

Y. Yuan, H. Yang, S. Gong, Z. Luo, and H. Yuan, Effects of feeding levels on growth performance, feed utilization, body composition and apparent digestibility coefficients of nutrients for juvenile Chinese sucker, Myxocyprinus asiaticus, Aquac Res, vol.41, pp.1030-1042, 2010.

B. M. Cleveland and G. S. Burr, Proteolytic response to feeding level in rainbow trout (Oncorhynchus mykiss), Aquaculture, vol.319, pp.194-204, 2011.

B. Breier, M. Vickers, B. Ikenasio, K. Chan, and W. P. Wong, Fetal programming of appetite and obesity, Mol Cell Endocrinol, vol.185, pp.73-79, 2001.

S. C. Langley-evans and S. Mcmullen, Developmental origins of adult disease, Med Princ Pr, vol.19, pp.87-98, 2010.

M. H. Vickers, B. H. Breier, W. S. Cutfield, P. L. Hofman, and P. D. Gluckman, Fetal origins of hyperphagia, obesity, and hypertension and postnatal amplification by hypercaloric nutrition, Am J Physiol -Endocrinol Metab, vol.279, pp.83-87, 2000.

D. S. Fernandez-twinn, S. E. Ozanne, S. Ekizoglou, C. Doherty, and L. James, The maternal endocrine environment in the low-protein model of intrauterine growth restriction, Br J Nutr, vol.90, pp.815-822, 2003.

F. I. Milagro, M. L. Mansego, D. Miguel, C. Martínez, and J. A. , Dietary factors, epigenetic modifications and obesity outcomes: Progresses and perspectives, Molecular Aspects of Medicine, vol.34, pp.782-812, 2013.

J. C. Jiménez-chillarón, R. Díaz, D. Martínez, T. Pentinat, and M. Ramón-krauel, The role of nutrition on epigenetic modifications and their implications on health, Biochimie, vol.94, pp.2242-2263, 2012.