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Historical Review of Cephalopods Culture

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Cephalopod Culture

Abstract

This chapter reviews the history of cephalopod culture since the 1960s until 2000, compiling the most important contributions in each decade and identifying key research laboratories and researchers. The literature found is vast in cephalopod species, methodologies and technology. Hence, this chapter focuses mainly on those species with an established aquaculture potential. It includes a description of the evolving seawater systems, broodstock acclimatisation to captivity and rearing/culture methodologies of different life stages.

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References

  • Arnold JM, Summers WC, Gilbert DL et al (1974) A guide to laboratory use of the squid Loligo pealei. Marine Biological Laboratory, Woods Hole

    Google Scholar 

  • Arnold JM, O’Dor RK (1990) In vitro fertilization and embryonic development of oceanic squid. J Ceph Biol 1:21–36

    Google Scholar 

  • Arvanitaki A, Fessard A, Kruta V (1936a) Analysis of the potential action of visceral nerves in the Sepia officinalis. Comptes Rendus Séances Soc Biol Fil 122:1204–1206

    Google Scholar 

  • Arvanitaki A, Fessard A, Kruta V (1936b) The repetitive method of electrical response in the visceral and stellate nerves in the Sepia officinalis. Comptes Rendus Séances Soc Biol Fil 122:1203–1204

    Google Scholar 

  • Barnabé G (1996) Bases Biologiques et Écologiques de l’Aquaculture Editorial Acribia. Spain, Zaragoza

    Google Scholar 

  • Bernardino FNV (2000) Review of aquaculture development in Portugal. J Appl Ichthyol 16:196–199

    Google Scholar 

  • Boletzky SV (1974a) Effets de la sous-nutrition prolongée sur le développement de la coquille de Sepia officinalis L. (Mollusca, Cephalopoda). Bull Soc Zool Fr -Evol Zool 99:667–673

    Google Scholar 

  • Boletzky SV (1974b) Elevage de céphalopodes en aquarium: acquis recents. BullSoc Zool Fr 114:57–66

    Google Scholar 

  • Boletzky SV (1974c) Élevage de céphalopodes en aquarium. Vie Milieu 24:309–340

    Google Scholar 

  • Boletzky SV (1974d) The “larvae” of cephalopod: a review. Thalassia Jugoslavica 10:45–76

    Google Scholar 

  • Boletzky SV (1975) Le développement d’Eledone moschata (Mollusca, Cephalopoda) élevée au laboratoire. Soc Zool Fr 100:361

    Google Scholar 

  • Boletzky SV (1979a) Growth and life-span of Sepia officinalis under artificial condition (Mollusca, Cephalopoda). Rapport Comm Internatio Mer Méditerranée 25-26:159–168

    Google Scholar 

  • Boletzky SV (1979b) Observations on the early post-embryonic development of Loligo vulgaris (Mollusca, Cephalopoda). Rapport Comm Internatio Mer Méditerranée 25–26:155–158

    Google Scholar 

  • Boletzky SV, Hanlon RT (1983) A review of the laboratory maintenance, rearing and culture of cephalopod molluscs. Memo Natl Mus Victoria 44:147–187

    Google Scholar 

  • Boletzky SV, Boletzky MV, Frösch D et al (1971) Laboratory rearing of Sepiolinae (mollusca: cephalopoda). Mar Biol 8:82–87

    Google Scholar 

  • Boucaud-Camou E (1981) La glande digestive, organe principal de la digestion dans Sepia officinalis L (Mollusque, Céphalopode). Bull Soc Zool Fr - Evol Zool 106:375–376

    Google Scholar 

  • Boucaud-Camou E (1982) Localization of some hydrolytic enzymes in digestive organs of juvenile Sepia officinalis L (Mollusca, Cephalopoda). Malacol 22:685–690

    CAS  Google Scholar 

  • Boucaud-Camou E (1989) L’aquaculture des cephalopodes: evaluation et perspectives. Haliotis 19:201–214

    Google Scholar 

  • Boucaud-Camou E (1990) La seiche, un animal d’avenir. Peche Maritime 69:321–329

    Google Scholar 

  • Boucaud-Camou E, Boucher-Rodoni R (1983) Feeding and digestion in cephalopods. The mollusca–physiology, Part 2. Academic Press, pp 149–187

    Google Scholar 

  • Boucaud-Camou E, Yim M (1981) Maturation post-embryonnaire de la glande digestive de Sepia officinalis L (Mollusque, Céphalopode). Bull Soc Zool Fr - Evol Zool 106:377–377

    Google Scholar 

  • 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

    Google Scholar 

  • 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

    Google Scholar 

  • Boyle PR (1991) The UFAW Handbook on the care and management of cephalopods in the laboratory. Universities Federation for Animal Welfare, Herts, pp 58

    Google Scholar 

  • Budelmann BU (1995) The cephalopod nervous system: what evolutions has made of the molluscan design. In: Breidbach O, Kutsuch W (eds) The nervous system of invertebrates. An evolutionary and comparative approach. Birkhauser Verlag, Basel, p 115–138

    Google Scholar 

  • Cagnetta P (2000) Preliminary observations on the productive responses of the common octopus (Octopus vulgaris C.) reared free or in individual nets. CIHEAM–Options Mediterraneennes 47:323–329

    Google Scholar 

  • Cagnetta P, Sublimi A (2000) Productive performance of the common octopus (Octopus vulgaris C.) when fed on a monodiet. CIHEAM–Options Mediterraneennes 47:331–336

    Google Scholar 

  • Castro BG (1991) Can Sepia officinalis L be reared on artificial food. Mar Behav Physiol 19:35–38

    Google Scholar 

  • Castro BG, Guerra A (1990) The diet of Sepia officinalis (Linnaeus, 1758) and Sepia elegans (D’Orbigny, 1835) (Cephalopoda, Sepioidea) from the Ria de Vigo (NW Spain). Sci Mar 54:375–388

    Google Scholar 

  • 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

    Google Scholar 

  • Castro BG, Lee PG (1994) The effects of semi-purified diets on growth and condition of Sepia officinalis L (Mollusca, Cephalopoda). Comp Biochem PhysiolA 109:1007–1016

    CAS  Google Scholar 

  • Choe S (1966) On the eggs, rearing, habits of the fry, and growth of some cephalopoda. Bull Mar Sci 16:330–348

    Google Scholar 

  • Choe S, Ohshima Y (1963) Rearing of cuttlefish and squids. Nature 197:307

    Google Scholar 

  • Coates HJ, Hussey RE, Nixon M (1965) An automatic food dispenser for Octopus vulgaris. J Physiol 183:51–52

    Google Scholar 

  • Coelho ML, Modesto T, Soares F (1989) Sepia officinalis: Potential for aquaculture and restocking. In: Boucaud-Camou E (ed) The Cuttlefish. Université de Caen. Caen, p 348–349

    Google Scholar 

  • D’Apote MP, Palmegiano GB (1982) Inseminazione della Laguna di Lesina con uova di Sepia officinalis L. Studio dell’effetto di parametri ambientali sulla schiusa: temperatura e salinitá. riv. Italia Piscicultura IHIOP 3:112–119

    Google Scholar 

  • DeRusha RH, Forsythe JW, Dimarco FP et al (1989) Alternative diets for maintaining and rearing cephalopods in captivity. Lab Anim Sci 39:306–312

    CAS  Google Scholar 

  • Durward RD, Vessey E, O’Dor R (1979) Reproduction in the squid, Illex illecebrosus: First observation in captivity and implications for the life cycle. Special Meeting of STACRES. Sel Pap ICNAF, (no.6):7–13

    Google Scholar 

  • Forsythe JW, Hanlon RT (1988) Effect of temperature on laboratory growth, reproduction and life span of Octopus bimaculoides. Mar Biol 98:369–379

    Google Scholar 

  • Forsythe JW, Hanlon RT, Derusha R (1991) Pilot-Scale culture of Sepia in biomedical research. In: Boucaud-Camou E (ed) The Cuttlefish. Centre de Publications de l’Université de Caen, Caen, p 313–323

    Google Scholar 

  • Forsythe JW, Derusha RH, Hanlon RT (1994) Growth, reproduction and life-span of Sepia officinalis (Cephalopoda, Mollusca) cultured through 7 consecutive generations. J Zool 233:175–192

    Google Scholar 

  • García GJ, Gonzáles LMR, García GB (2004) Cost analysis of octopus ongrowing installation in Galicia. Span J Agric Res 2:531–537

    Google Scholar 

  • Gariaeff W (1906) Le système nerveux des céphalopodes. La structure fibreuse des cellules ganglionnaires de Octopus vulgaris. Comptes Rendus Séances Soc Biol Fil 61:201–202

    Google Scholar 

  • Guerra A (1978) Sobre la alimentación y el comportamiento alimentario de Octopus vulgaris. Inv Pesq 42:351–364

    Google Scholar 

  • Hanley JS, Shashar N, Smolowitz R et al (1998) Modified laboratory culture techniques for the European cuttlefish Sepia officinalis. Biol Bull 195:223–225

    CAS  Google Scholar 

  • Hanley JS, Shashar N, Smolowitz R et al (1999) Soft-sided tanks improve long-term health of cultured cuttlefish. Biol Bull 197:237–238

    Google Scholar 

  • Hanlon RT (1987) Mariculture. Cephalopod life cycles. Academic Press Inc., London

    Google Scholar 

  • Hanlon RT (1990) Maintenance, rearing and culture of teuthoid and sepioid squids. In: Guilbert DL, Adelman WJ Jr, Arnold JM (eds) Squid as experimental animals. Plenum Press, New York, p 35–61

    Google Scholar 

  • Hanlon RT, Forsythe JW (1985) Advances in the laboratory culture of octopuses for biomedical research. Lab Anim Sci 35:33–40

    CAS  Google Scholar 

  • Hanlon RT, Hixon RF (1983) Laboratory maintenance and culture of octopuses and loliginid squids. In: Berg CJ Jr (ed) Culture of Marine Invertebrates. Hutchinson Ross Publishing Company, Stroudsburg, p 44–61

    Google Scholar 

  • Hanlon RT, Wolterding MR (1989) Behavior, body patterning, growth and life history of Octopus briareus cultures in the laboratory. Am Malac Bull 7:21–45

    Google Scholar 

  • Hanlon RT, Hixon RF, Hulet WH (1983) Survival, growth, and behaviour of the loliginid squids Loligo plei, Loligo pelaei, and Lolliguncula brevis (Mollusca: Cephalopoda) in closed seawater systems. Biol Bull 165:637–685

    Google Scholar 

  • Hanlon RT, Yang WT, Turk PE et al (1989) Laboratory culture and estimated life span of the Eastern Atlantic squid, Loligo forbesi Steenstrup, 1856 (Mollusca: Cephalopoda). Aquacult Fish Manag 20:15–34

    Google Scholar 

  • Hanlon RT, Messenger JB (1996) Cephalopod Behaviour. Cambridge University Press, New York

    Google Scholar 

  • Hanlon RT, Turk PE, Lee PG (1991) Squid and cuttlefish mariculture: an updated perspective. J Ceph Biol 2:31–40

    Google Scholar 

  • Hulet WH, Villoch MR, Hixon RF et al (1979) Fin damage in captured and reared squids. Lab Anim Sci 29:528–533

    CAS  Google Scholar 

  • Iglesias J, Sánchez FJ, Otero JJ et al (2000) Culture of octopus (Octopus vulgaris, Cuvier): Present knowledge, problems and perspectives. Cah Options Méditerran 47:313–321

    Google Scholar 

  • Ikeda Y, Sakurai Y, Shimazaki K (1993) Fertilizing capacity of squid (Todarodes pacificus) spermatozoa collected from various sperm storage sites, with special reference to the role of gelatinous substance from oviducal gland in fertilization and embryonic development. Invertebr Reproduction Develop 23:39–44

    Google Scholar 

  • Ikeda Y, Shimazaki K (1995) Does nidamental gland jelly induce the formation of perivitelline space at fertilization in the squid Todarodes pacificus? J Mar Biol Ass UK 75:495–497

    Google Scholar 

  • Itami K, Izawa Y, Maeda S et al (1963) Notes on the laboratory culture of the octopus larvae. Bull Japan Soc Sci Fish 29:514–527

    Google Scholar 

  • Koueta N, Boucaud-Camou E (1999) Food intake and growth in reared early juvenile cuttlefish Sepia officinalis L (Mollusca Cephalopoda). J Exp Mar Biol Ecol 240:93–109

    Google Scholar 

  • Koueta N, Andrade JP, Von Boletzky S (2006) The cuttlefish Sepia officinalis a working model in cephalopod research. Vie Milieu 56:67–67

    Google Scholar 

  • Laroe ET (1971) The culture and maintenance of the loliginid squids Sepioteuthis sepioidea and Doryteuthis plei. Mar Biol 9:9–25

    Google Scholar 

  • Laschi C, Cianchetti M, Mazzolai B et al (2012) Soft robotic arm inspired by the octopus. Adv Robotics 26:709–727

    Google Scholar 

  • Lee PG (1992) Chemotaxis by Octopus maya Voss et Solis in a Y-maze. J Exp Mar Biol Ecol 156:53–67

    Google Scholar 

  • Lee PG (1994) Computer automation and intelligent control for aquaculture. Bull Natl Res Inst Aquacult Suppl I:105–110

    Google Scholar 

  • Lee PG (1995) A review of automated control systems for aquaculture and design criteria for their implementation. Aquacult Eng 14:205–227

    Google Scholar 

  • Lee PG, Forsythe JW, DiMarco FP et al (1991) Initial palatability and growth trials on pelleted diets for cephalopods. Bull Mar Sci 49:362–372

    Google Scholar 

  • Lee PG, Turk PE, Yang WT et al (1994) Biological characteristics and biomedical applications of the squid Sepioteuthis lessoniana cultured through multiple generations. Biol Bull 186:328–341

    CAS  Google Scholar 

  • Lee PG, Turk PE, Forsythe JW et al (1998) Cephalopod culture: physiological, behavioral and environmental requirements. Suisanzoshoku 46:417–422

    Google Scholar 

  • Lee PG, Lea RN, Dohmann E et al (2000) Denitrification in aquaculture systems: an example of a fuzzy logic control problem. Aquacult Eng 23:37–59

    Google Scholar 

  • Melzner F, Gutowska MA, Langenbuch M et al (2009) Physiological basis for high CO2 tolerance in marine ectothermic animals: pre-adaptation through lifestyle and ontogeny? Biogeosciences 6:2313–2331

    CAS  Google Scholar 

  • Nabhitabhata J (1995) Mass culture of cephalopods in Thailand. World Aquaculture 26:25–29

    Google Scholar 

  • Nabhitabhata J (1996) Life cycle of cultured big fin squid Sepioteuthis lessoniana Lesson. Phuket Mar Biol Center Special Pub 16:83–95

    Google Scholar 

  • Nabhitabhata J (1997) Life cycle of three cultured generations of spineless cuttlefish, Sepiella inermis (Férussac & D’Orbigny, 1848). Phuket Mar Biol Center Special Pub 17:289–298

    Google Scholar 

  • Nabhitabhata J, Nilaphat P (1999) Life cycle of cultured pharaoh cuttlefish, Sepia pharaonis Ehrenberg, 1831. Phuket Mar Biol Center Special Pub 19:25–40

    Google Scholar 

  • Nabhitabhata J, Nilaphat P (2000) Behaviour of juvenile cephalopods: preference for texture and brightness of substrata. Phuket Mar Biol Center Special Pub 21:103–112

    Google Scholar 

  • Neill SSJ (1971) Notes on squid and cuttlefish: Keeping, handling and colour-patterns. Pubbl Staz Zool Napoli 39:64–69

    Google Scholar 

  • Nixon M (1987) Cephalopod diets. In: Boyle PR (ed) Cephalopod life cycles. Academic Press, London, p 201–219

    Google Scholar 

  • O’Dor RK, Durward RD, Balch N (1977) Maintenance and maturation of squid (Illex illecebrosus) in a 15 m circular pool. Biol Bull 153:322–335

    Google Scholar 

  • Ohshima Y, Choe S (1961) On the rearing of young cuttlefish and squid. Bull Japan Soc Sci Fish 27:979–987

    Google Scholar 

  • Overath H, Boletzky MV (1974) Laboratory observations on spawning and embryonic development of a blue-ringed octopus. Mar Biol 27:333–337

    Google Scholar 

  • Palmegiano GB, Sequi R (1981) On the possibility of the introduction of cuttlefish (Sepia officinalis L.) in a management strategy for the coastal lagoons. Symposium International sur les Lagunes Cotieres, France, p 1–9

    Google Scholar 

  • Palmegiano GB, D’apote MP (1983) Combined effects of temperature and salinity on cuttlefish (Sepia officinalis L.) hatching. Aquaculture 35:259–264

    Google Scholar 

  • Palmegiano GB, Sequi R (1984) Allevamento estensivo di Sepia officinalis L. Agricoltura e Ricerca 41:49–56

    Google Scholar 

  • Pascual E (1978) Crecimiento y alimentacíon de tres generaciones de Sepia officinalis en cultivo. Inv Pesq 42:421–442

    Google Scholar 

  • Pörtner HO, Farrell AP (2008) Physiology and climate change. Science 322:690–692

    Google Scholar 

  • Richard A (1971) Contribuition à l’étude expérimentale de la croissance et de la maturation sexuelle de Sepia officinalis L. (Mollusque, Céphalopode). Université de Lille, Lille. France, pp 264

    Google Scholar 

  • Richard A (1975) L’élevage de la seiche (Sepia officinalis L., Mollusque Céphalopode). 10th European Symposium on Marine Biology. Ostend, Belgium 1:359–380

    Google Scholar 

  • Robaina GO (1983) Sobre el cultivo y el mantenimiento de Octopus briareus Robson 1929 (Cephalopoda: Octopoda). Inf Técn Inst Inv Pesq 106:3–20

    Google Scholar 

  • Sakai M, Brunetti NE (1997) Preliminary experiments on artificial insemination of the argentine shortfin squid Illex argentinus. Fish Sci 63:664–667

    CAS  Google Scholar 

  • Sakai M, Brunetti NE, Elena B, Sakurai Y (1998) Embryonic development and hatchlings of Illex argentinus derived from artificial fertilization. South African J Mar Sci 20:255–265

    Google Scholar 

  • Sakurai Y, Young RE, Hirota J, Mangold K, Vecchione M, Clarke MR, Bower J (1995) Artificial fertilization and development through hatching in the oceanic squids Ommastrephes bartramii and Sthenoteuthis oualaniensis (Cephalopoda: Ommastrephidae). Veliger 38:185–191

    Google Scholar 

  • Sakurai Y, Bower JR, Nakamura Y, Yamamoto S, Watanabe K (1996) Effect of temperature on development and survival of Todarodes pacificus embryos and paralarvae. Am Malacol Bull 13:89–95

    Google Scholar 

  • Sequi R (1980) Some experiences on rearing of Sepia officinalis L. (Mollusca Cephalopoda). Mem Biol Marina e Oceanogr Suppl X:299–303

    Google Scholar 

  • Sequi R, Palmegiano GB (1984) Some alternatives for the use of cuttlefish (Sepia officinalis L.) resources in coastal lagoons. GFCM Studies and Reviews—Management of Coastal Lagoons Fisheries. Rome, p 607–614

    Google Scholar 

  • Sequi R, Palmegiano GB (1985) Aggiornamenti sul sistema di raccolta di uova di Sepia officinalis L. Quademi IstIdrobiol Acquacolt Brunelli 5-6:57–63

    Google Scholar 

  • Sio FD (2011) Leviathan and the soft animal: medical humanism and the invertebrate models for higher nervous functions, 1950s-90s. Med Hist 55:369–374

    Google Scholar 

  • Strugnell JM, Cherel Y, Cooke IR et al (2011) The Southern Ocean: source and sink? Deep Sea Res Part 2 Top Stud Oceanogr 58:9–9

    Google Scholar 

  • Summers WC, McMahon JJ (1974) Studies on the maintenance of adult squid (Loligo pealei) L. Factorial survey. Biol Bull 146:279–290

    CAS  Google Scholar 

  • Summers WC, McMahon JJ, Ruppert GNPA (1974) Studies on the maintenance of adult squid (Loligo pealei) II. Empirical extensions. Biol Bull 146:291–301

    CAS  Google Scholar 

  • Sykes AV, Oliveira AR, Domingues PM et al (2009) Assessment of European cuttlefish (Sepia officinalis, L.) nutritional value and freshness under ice storage using a developed Quality Index Method (QIM) and biochemical methods. Food Sci Tech 42:424–432

    CAS  Google Scholar 

  • Toll RB, Strain CH (1988) Freshwater and terrestrial food organisms as an alternative diet for laboratory culture of cephalopods. Malacol 29:195–200

    Google Scholar 

  • Tricarico E, Borrelli L, Gherardi F et al (2011) I know my neighbour: Individual recognition in Octopus vulgaris. Plos One 6:e18710

    CAS  Google Scholar 

  • Turk PE, Hanlon RT, Bradford LA et al (1986) Aspects of feeding, growth and survival of the european squid Loligo vulgaris Lamarck, 1799, reared through the early growth stages. Vie Milieu 36:9–13

    Google Scholar 

  • Uriarte I, Iglesias J, Domingues P et al (2011) Current status and bottle neck of octopod aquaculture: the case of American species. J World Aquacult Soc 42:735–752

    Google Scholar 

  • Van Der Sprenkel HB (1929) Nerve-endings to the muscles of the arm of Sepia officinalis. Proceedings of the Koninklijke Akademie Van Wetenschappen Te Amsterdam 32:151–155

    Google Scholar 

  • Van Heukelem WF (1977) Laboratory maintenance, breeding, rearing, and biomedical research potential of the Yucatan octopus (Octopus maya). Lab Anim Sci 27:852–859

    Google Scholar 

  • Vaz-Pires P, Seixas P, Barbosa A (2004) Aquaculture potential of the common octopus (Octopus vulgaris Cuvier 1797): a review. Aquaculture 238:221–238

    Google Scholar 

  • Villanueva R (1994) Decapod crab zoeae as food for rearing cephalopod paralarvae. Aquaculture 128:143–152

    Google Scholar 

  • Villanueva R (1995) Experimental rearing and growth of planktonic Octopus vulgaris from hatching to settlement. Can J Fish Aquatic Sci 52:2639–2650

    Google Scholar 

  • Villanueva R, Staaf DJ, Argüelles J, Bozzano A, Camarillo-Coop S, Nigmatullin CM, Petroni G, Quintana D, Sakai M, Sakurai Y, Salinas-Zavala CA, De Silva-Dávila R, Tafur R, Yamashiro C, Vidal EAG (2012) A laboratory guide to in vitro fertilization of oceanic squids. Aquaculture 342-343:125–133

    Google Scholar 

  • Watanabe K, Sakurai Y, Segawa S, Okutani T (1996) Development of the ommastrephid squid Todarodes pacificus, from fertilized egg to rhynchoteuthion paralarva. Am Malacol Bull 13:73–88

    Google Scholar 

  • Wells MJ (1962) Brain and behaviour in cephalopods. Heinemann

    Google Scholar 

  • Whitson J, Turk P, Lee P (1993) Biological denitrification in a closed recirculating marine culture system. In: Wang J-K (ed) Techniques for modern aquaculture. American society of agricultural engineers. Washington, pp 458–466

    Google Scholar 

  • Williamson R, Chrachri A (2004) Cephalopod neural networks. Neurosignals 13:87–98

    CAS  Google Scholar 

  • Wood JB, O’dor RK (2000) Do larger cephalopods live longer? Effects of temperature and phylogeny on interspecific comparisons of age and size at maturity. Mar Biol 136:91–99

    Google Scholar 

  • Yang WT, Hanlon RT, Hixon RF et al (1980) First sucess in rearing hatchlings of the squid Loligo pealei Lesueur 1821. Malacol Rev 13:79–80

    Google Scholar 

  • Yang WT, Hanlon RT, Krejci ME et al (1983) Laboratory rearing of Loligo opalescens, the market squid of California. Aquaculture 31:77–88

    Google Scholar 

  • Yang WT, Hixon RF, Turk PE et al (1986) Growth, behaviour, and sexual maturation of the market squid, Loligo opalescens, cultured through the life cycle. Fish Bull 84:771–799

    Google Scholar 

  • Yang WT, Hanlon RT, Lee PG et al (1989) Design and function of closed seawater systems for culturing Loliginid squids. Aquacult Eng 8:47–65

    Google Scholar 

  • Young JZ (1938) The functioning of the giant nerve fibres of the squid. J Exp Biol 15:170–185

    Google Scholar 

  • Young JZ (1985) Cephalopods and Neuroscience. Biol Bull 168:153–158

    Google Scholar 

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Sykes, A., Koueta, N., Rosas, C. (2014). Historical Review of Cephalopods Culture. In: Iglesias, J., Fuentes, L., Villanueva, R. (eds) Cephalopod Culture. Springer, Dordrecht. https://doi.org/10.1007/978-94-017-8648-5_4

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