89
5 Nutrition as a Key Factor for Cephalopod Aquaculture
André J, Grist EPM, Semmens JM et al (2009) Effects of temperature on energetics and the growth
pattern of benthic octopuses. Mar Ecol Prog Ser 374:167–179
Andrés M, Estévez A, Simeó CG et al (2010) Annual variation in the biochemical composition of
newly hatched larvae of Maja brachydactyla in captivity. Aquaculture 310:99–105
Aragão C, Conceição LEC, Dinis MT et al (2004) Amino acid pools of rotifers and Artemia under
different conditions: Nutritional implications for fish larvae. Aquaculture 234:429–445
Baldwin J, Fields JHA, Hochachka PW (1976) Role of octopine dehydrogenase in energy-metabolism of cephalopods. Proc Australian Biochem Soc 9:5–5
Ballantyne JS (2004) Mitochondria: aerobic and anaerobic design—lessons from molluscs and
fishes. Comp Biochem Physiol B 139:461–467
Ballantyne JS, Hochachka PW, Mommsen TP (1981) Studies on the metabolism of the migratory
squid, Loligo opalescens—enzymes of tissues and heart-mitochondria. Mar Biol Let 2:75–85
Barnabé G (1996) Bases Biologiques et Écologiques de l’Aquaculture. Editorial Acribia SA,
Zaragoza
Beuerlein K, Ruth P, Scholz FR et al (2004) Blood cells and the biosynthesis of hemocyanin in
Sepia embryos. Micron 35:115–116
Blanchier B (1981) Etude des lipides totaux et des steroides dans la glande digestive et la gonade
chez la seiche Sepia officinalis L. (Mollusque, Cephalopode). Université de Caen, France
Boletzky SV (1974) Effects of continuous malnutrition on development of cuttlebone in Sepia officinalis L (Mollusca, Cephalopoda). Bull Soc Zool France—Evol Zool 99:667–673
Bouchaud O (1991) Energy consumption of the cuttlefish Sepia officinalis L. (Mollusca:
Cephalopoda) during embryonic development, preliminary results. Bull Mar Sci 49:333–340
Bouchaud O, Galois R (1990) Utilization of egg-yolk lipids during the embryonic development of
Sepia officinalis L. in relation to temperature of the water. Comp Bioch Physio 97B:611–615
Boucaud-Camou E (1969) Localization of amylase and protease activities in digestive system of
Sepia officinalis L. Cr Acad Sci D Nat 269:2564–2566
Boucaud-Camou E (1974) Localisation d’activités enzymatiques impliquées dans la digestion
chez Sepia officinalis L. Arch Zool Exp Gén 115:5–27
Boucaud-Camou E (1989) L’aquaculture des cephalopodes: evaluation et perspectives. Haliotis
19:201–214
Boucaud-Camou E (1990) La seiche, un animal d’avenir. Peche Maritime 69:321–329
Boucaud-Camou E, Yim M, Tresgot A (1985) Feeding and digestion of young Sepia officinalis L.
(Mollusca: Cephalopoda) during post-hatching development. Vie Milieu 35:263–266
Boucher-Rodoni R, Mangold K (1994) Ammonia production in cephalopods, physiological and
evolutionary aspects. Mar Freshw Behav Physiol 25:53–60
Boucher-Rodoni R, Boucaud-Camou E, Mangold K (1987) Feeding and digestion. In: Boyle PR
(ed) Cephalopod Life Cycles. Academic Press London, p 85–108
Brown MR, Battaglene SC, Morehead DT, Brock M (2005) Ontogenetic changes in amino acid
and vitamins during early larval stages of striped trumpeter ( Latris lineata). Aquaculture
248:263–274
Bustamante P, Teyssie JL, Danis B et al (2004) Uptake, transfer and distribution of silver and
cobalt in tissues of the common cuttlefish Sepia officinalis at different stages of its life cycle.
Mar Ecol—Progr Ser 269:185–195
Carter CG, Lynch KA, Moltschaniwskyj NA (2009) Protein synthesis in a solitary benthic cephalopod, the Southern dumpling squid ( Euprymna tasmanica). Comp Biochem Physio A: Mol
Int Physiol 153:185–190
Castro BG, Garrido JL, Sotelo CG (1992) Changes in composition of digestive gland and mantle
muscle of the cuttlefish Sepia officinalis during starvation. Mar Biol 114:11–20
Castro BG, Dimarco FP, Derusha RH et al (1993) The effects of surimi and pelleted diets on the
laboratory survival, growth, and feeding rate of the cuttlefish Sepia officialis L. J Exp Mar Biol
Ecol 170:241–252
Cho SY, Joo DS, Choi HG, Nara E, Miyashita K (2001) Oxidative stability of lipids from squid
tissues. Fish Sci 67:738–743
Conceição LEC, Grasdalen H, Ronnestad I (2003) Amino acid requirements of fish larvae and
post-larvae: new tools and recent findings. Aquaculture 227:221–232
5 Nutrition as a Key Factor for Cephalopod Aquaculture
André J, Grist EPM, Semmens JM et al (2009) Effects of temperature on energetics and the growth
pattern of benthic octopuses. Mar Ecol Prog Ser 374:167–179
Andrés M, Estévez A, Simeó CG et al (2010) Annual variation in the biochemical composition of
newly hatched larvae of Maja brachydactyla in captivity. Aquaculture 310:99–105
Aragão C, Conceição LEC, Dinis MT et al (2004) Amino acid pools of rotifers and Artemia under
different conditions: Nutritional implications for fish larvae. Aquaculture 234:429–445
Baldwin J, Fields JHA, Hochachka PW (1976) Role of octopine dehydrogenase in energy-metabolism of cephalopods. Proc Australian Biochem Soc 9:5–5
Ballantyne JS (2004) Mitochondria: aerobic and anaerobic design—lessons from molluscs and
fishes. Comp Biochem Physiol B 139:461–467
Ballantyne JS, Hochachka PW, Mommsen TP (1981) Studies on the metabolism of the migratory
squid, Loligo opalescens—enzymes of tissues and heart-mitochondria. Mar Biol Let 2:75–85
Barnabé G (1996) Bases Biologiques et Écologiques de l’Aquaculture. Editorial Acribia SA,
Zaragoza
Beuerlein K, Ruth P, Scholz FR et al (2004) Blood cells and the biosynthesis of hemocyanin in
Sepia embryos. Micron 35:115–116
Blanchier B (1981) Etude des lipides totaux et des steroides dans la glande digestive et la gonade
chez la seiche Sepia officinalis L. (Mollusque, Cephalopode). Université de Caen, France
Boletzky SV (1974) Effects of continuous malnutrition on development of cuttlebone in Sepia officinalis L (Mollusca, Cephalopoda). Bull Soc Zool France—Evol Zool 99:667–673
Bouchaud O (1991) Energy consumption of the cuttlefish Sepia officinalis L. (Mollusca:
Cephalopoda) during embryonic development, preliminary results. Bull Mar Sci 49:333–340
Bouchaud O, Galois R (1990) Utilization of egg-yolk lipids during the embryonic development of
Sepia officinalis L. in relation to temperature of the water. Comp Bioch Physio 97B:611–615
Boucaud-Camou E (1969) Localization of amylase and protease activities in digestive system of
Sepia officinalis L. Cr Acad Sci D Nat 269:2564–2566
Boucaud-Camou E (1974) Localisation d’activités enzymatiques impliquées dans la digestion
chez Sepia officinalis L. Arch Zool Exp Gén 115:5–27
Boucaud-Camou E (1989) L’aquaculture des cephalopodes: evaluation et perspectives. Haliotis
19:201–214
Boucaud-Camou E (1990) La seiche, un animal d’avenir. Peche Maritime 69:321–329
Boucaud-Camou E, Yim M, Tresgot A (1985) Feeding and digestion of young Sepia officinalis L.
(Mollusca: Cephalopoda) during post-hatching development. Vie Milieu 35:263–266
Boucher-Rodoni R, Mangold K (1994) Ammonia production in cephalopods, physiological and
evolutionary aspects. Mar Freshw Behav Physiol 25:53–60
Boucher-Rodoni R, Boucaud-Camou E, Mangold K (1987) Feeding and digestion. In: Boyle PR
(ed) Cephalopod Life Cycles. Academic Press London, p 85–108
Brown MR, Battaglene SC, Morehead DT, Brock M (2005) Ontogenetic changes in amino acid
and vitamins during early larval stages of striped trumpeter ( Latris lineata). Aquaculture
248:263–274
Bustamante P, Teyssie JL, Danis B et al (2004) Uptake, transfer and distribution of silver and
cobalt in tissues of the common cuttlefish Sepia officinalis at different stages of its life cycle.
Mar Ecol—Progr Ser 269:185–195
Carter CG, Lynch KA, Moltschaniwskyj NA (2009) Protein synthesis in a solitary benthic cephalopod, the Southern dumpling squid ( Euprymna tasmanica). Comp Biochem Physio A: Mol
Int Physiol 153:185–190
Castro BG, Garrido JL, Sotelo CG (1992) Changes in composition of digestive gland and mantle
muscle of the cuttlefish Sepia officinalis during starvation. Mar Biol 114:11–20
Castro BG, Dimarco FP, Derusha RH et al (1993) The effects of surimi and pelleted diets on the
laboratory survival, growth, and feeding rate of the cuttlefish Sepia officialis L. J Exp Mar Biol
Ecol 170:241–252
Cho SY, Joo DS, Choi HG, Nara E, Miyashita K (2001) Oxidative stability of lipids from squid
tissues. Fish Sci 67:738–743
Conceição LEC, Grasdalen H, Ronnestad I (2003) Amino acid requirements of fish larvae and
post-larvae: new tools and recent findings. Aquaculture 227:221–232
