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Research Article

Effects of mixed diets on the reproductive success and population growth of cultured Acartia grani (Calanoida)

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References

  • Alajmi, F., and C. Zeng. 2015. Evaluation of microalgal diets for the intensive cultivation of the tropical calanoid copepod, Parvocalanus crassirostris. Aquaculture Research 46:1025–38. doi:10.1111/are.12254.
  • Arendt, K. E., S. H. Jónasdóttir, P. J. Hansen, and S. Gärtner. 2005. Effects of dietary fatty acids on the reproductive success of the calanoid copepod Temora longicornis. Marine Biology 146:513–30. doi:10.1007/s00227-004-1457-9.
  • Arndt, C., and U. Sommer. 2014. Effect of algal species and concentration on development and fatty acid composition of two harpacticoid copepods, Tisbe sp. and Tachidius discipes, and a discussion about their suitability for marine fish larvae. Aquaculture Nutrition 20:44–59. doi:10.1111/anu.12051.
  • Bernal-Durán, V., and M. F. Landaeta. 2017. Feeding variations and shape changes of a temperate reef clingfish during its early ontogeny. Scientia Marina 81:205–15. doi:10.3989/scimar.04555.09A.
  • Bonnet, D., and F. Carlotti. 2001. Development and egg production in Centropages typicus (Copepoda: Calanoida) fed different food types: A laboratory study. Marine Ecology Progress Series 224:133–48. doi:10.3354/meps224133.
  • Burgess, J. G., K. Iwamoto, Y. Miura, H. Takano, and T. Matsunaga. 1993. An optical-fiber photobioreactor for enhanced production of the marine unicellular alga Isochrysis aff. galbana T-Iso (UTEX LB 2307) rich in docosahexaenoic acid. Applied Microbiology and Biotechnology 39:456–59. doi:10.1007/BF00205032.
  • Buttino, I., A. Ianora, S. Buono, V. Vitello, G. Sansone, and A. Miralto. 2009. Are monoalgal diets inferior to plurialgal diets to maximize cultivation of the calanoid copepod Temora stylifera. Marine Biology 156:1171–82. doi:10.1007/s00227-009-1159-4.
  • Calbet, A., and M. Alcaraz. 1996. Effects of constant and fluctuating food supply on egg production rates of Acartia grani (Copepoda: Calanoida). Marine Ecology Progress Series 140:33–39. doi:10.3354/meps140033.
  • Calbet, A., and M. Alcaraz. 1997. Growth and survival rates of early developmental stages of Acartia grani (Copepoda: Calanoida) in relation to food concentration and fluctuations in food supply. Marine Ecology Progress Series 147:181–86. doi:10.3354/meps147181.
  • Calliari, D., and P. Tiselius. 2005. Feeding and reproduction in a small calanoid copepod: Acartia clausi can compensate quality with quantity. Marine Ecology Progress Series 298:241–50. doi:10.3354/meps298241.
  • Camus, T., and C. Zeng. 2012. Reproductive performance, survival and development of nauplii and copepodites, sex ratio and adult life expectancy of the harpacticoid copepod, Euterpina acutifrons, fed different microalgal diets. Aquaculture Research 43:1159–69. doi:10.1111/j.1365-2109.2011.02919.x.
  • Camus, T., C. Zeng, and A. D. McKinnon. 2009. Egg production, egg hatching success and population increase of the tropical paracalanid copepod, Bestiolina similis (Calanoida: Paracalanidae) fed different microalgal diets. Aquaculture 297:169–75. doi:10.1016/j.aquaculture.2009.09.018.
  • Castro-Longoria, E. 2003. Egg Production and hatching success of four Acartia species under different temperature and salinity regimes. Journal of Crustacean Biology 23:289–99. doi:10.1163/20021975-99990339.
  • Chu, F. E., E. D. Lund, and J. A. Podbesek. 2008. Quantitative significance of n-3 essential fatty acid contribution by heterotrophic protists in marine pelagic food webs. Marine Ecology Progress Series 354:85–95. doi:10.3354/meps07215.
  • Cunha, M. E., H. Quental, A. Barradas, P. Pousão-Ferreira, E. Cabrita, and S. Engrola. 2009. Rearing larvae of dusky grouper, Epinephelus marginatus (Lowe, 1834), (Pisces: Serranidae) in a semi-extensive mesocosm. Scientia Marina 73:201–12. doi:10.3989/scimar.2009.73s1201.
  • Dam, H. G., and R. M. Lopes. 2003. Omnivory in the calanoid copepod Temora longicornis: Feeding, egg production and egg hatching rates. Journal of Experimental Marine Biology and Ecology 292:119–37. doi:10.1016/S0022-0981(03)00162-X.
  • Delbare, D., P. Dhert, and P. Lavens. 2006. Zooplankton. In Manual on the production and use of live food for aquaculture, ed. P. Lavens and P. Sorgeloos, 252–82. Rome: FAO.
  • Dodge, J. D. 1982. Marine Dinoflagellates of the British Isles. London: Her Majesty’s Stationary Office.
  • Drillet, G., S. Frouël, M. H. Sichlau, P. M. Jepsen, J. K. Højgaard, A. K. Joarder, and B. W. Hansen. 2011. Status and recommendations on marine copepod cultivation for use as live feed. Aquaculture 315:155–66. doi:10.1016/j.aquaculture.2011.02.027.
  • Drillet, G., M. H. Iversen, T. F. Sørensen, H. Ramløv, T. Lund, and B. W. Hansen. 2006. Effect of cold storage upon eggs of a calanoid copepod, Acartia tonsa (Dana) and their offspring. Aquaculture 254:714–29. doi:10.1016/j.aquaculture.2005.11.018.
  • Evjemo, J. O., N. Tokle, O. Vadstei, and Y. Olsen. 2008. Effect of essential dietary fatty acids on egg production and hatching success of the marine copepod Temora longicornis.. Journal of Experimental Marine Biology and Ecology 365:31–37. doi:10.1016/j.jembe.2008.07.032.
  • Gifford, D. J., and M. J. Dagg. 1988. Feeding of the estuarine copepod Acartia tonsa Dana: Carnivory vs. herbivory in natural microplankton assemblages. Bulletin of Marine Science 43:458–68.
  • Hansen, B. W., G. Drillet, and P. M. Jepsen. 2013. Combating some of the crucial bottlenecks for calanoid copepod cultivation for live feed. Paper presented at the 6th Fish & Shellfish Larviculture Symposium, Ghent University, Belgium, September 2–5.
  • Helenius, L. K., and E. Saiz. 2017. Feeding behavior of the nauplii of the marine calanoid copepod Paracartia grani Sars: Functional response, prey size spectrum, and effects of the presence of alternative prey. PLoS ONE 12 (3):e0172902. doi:10.1371/journal.pone.0172902.
  • Hessen, D. O., P. J. Færøvig, and T. Andersen. 2002. Light, nutrients, and P:C ratios in algae: Grazer performance related to food quality and quantity. Ecology 83:1886–98. doi:10.1890/0012-9658(2002)083[1886:LNAPCR]2.0.CO;2.
  • Isari, S., M. Antó, and E. Saiz. 2013. Copepod foraging on the basis of food nutritional quality: Can copepods really choose? PLoS ONE 8 (12):e84742. doi:10.1371/journal.pone.0084742.
  • Jepsen, P. M., N. S. Bjørbæk, T. A. Rayner, M. T. T. Vu, and B. W. Hansen. 2017. Recommended feeding regime and light climate in live feed cultures of the calanoid copepod Acartia tonsa Dana. Aquaculture International 25:635–54. doi:10.1007/s10499-016-0063-4.
  • Jeyaraj, N., and P. Santhanam. 2013. Influence of algal diet on population density, egg production and hatching succession of the calanoid copepod, Paracalanus parvus (Claus, 1863). Journal of Algal Biomass Utilization 4:1–8.
  • Kiørboe, T., F. Møhlenberg, and K. Hamburger. 1985. Bioenergetics of the planktonic copepod Acartia tonsa: Relation between feeding, egg production and respiration, and composition of specific dynamic action. Marine Ecology Progress Series 26:85–97. doi:10.3354/meps026085.
  • Klein Breteler, W. C. M., N. Schogt, M. Baas, S. Schouten, and G. W. Kraay. 1999. Trophic upgrading of food quality by protozoans enhancing copepod growth: Role of essential lipids. Marine Biology 135:191–98. doi:10.1007/s002270050616.
  • Kleppel, G. S., C. A. Burkart, and L. Houchin. 1998. Nutrition and the regulation of egg production in the Calanoid copepod Acartia tonsa. Limnology and Oceanography 43:1000–07. doi:10.4319/lo.1998.43.5.1000.
  • Knuckey, R. M., G. L. Semmens, R. J. Mayer, and M. A. Rimmer. 2005. Development of an optimal microalgal diet for the culture of the calanoid copepod Acartia sinjiensis: Effect of algal species and feed concentration on copepod development. Aquaculture 249:339–51. doi:10.1016/j.aquaculture.2005.02.053.
  • Levinsen, H., J. T. Turner, T. G. Nielsen, and B. W. Hansen. 2000. On the trophic coupling between protists and copepods in arctic marine ecosystems. Marine Ecology Progress Series 204:65–77. doi:10.3354/meps204065.
  • Lowe, C. D., L. E. Martin, and P. C. Watts. 2011. Collection, isolation and culturing strategies for Oxyrrhis marina. Journal of Plankton Research 33:569–78. doi:10.1093/plankt/fbq161.
  • Matias-Peralta, H. M., F. M. Yusoff, M. Shariff, and S. Mohamed. 2012. Reproductive performance, growth and development time of a tropical harpacticoid copepod, Nitocra affinis californica Lang, 1965 fed with different microalgal diets. Aquaculture 344–349:168–73. doi:10.1016/j.aquaculture.2012.02.026.
  • McKinnon, D., S. Duggan, P. D. Nichol, M. A. Rimmer, G. Semmens, and B. Robin. 2003. The potential of tropical paracalanid copepods as live feeds in aquaculture. Aquaculture 223:89–106. doi:10.1016/S0044-8486(03)00161-3.
  • Milione, M., and C. Zeng. 2007. The effects of algal diets on population growth and egg hatching success of the tropical calanoid copepod, Acartia sinjiensis. Aquaculture 273:656–64. doi:10.1016/j.aquaculture.2007.07.014.
  • Mullin, M. M., and E. R. Brooks. 1970. The effect of concentration of food on body weight, cumulative ingestion and rate of growth of the marine copepod Calanus helgolandicus. Limnology and Oceanography 15:748–55. doi:10.4319/lo.1970.15.5.0748.
  • Nogueira, N., B. Sumares, C. A. P. Andrade, and A. Afonso. 2018. The effects of temperature and photoperiod on egg hatching success, egg production and population growth of the calanoid copepod, Acartia grani (Calanoida: Acartiidae). Aquaculture Research 49:93–103. doi:10.1111/are.13437.
  • Pan, Y. J., S. Souissi, A. Souissi, C. H. Wu, S. H. Cheng, and J. S. Hwang. 2014. Dietary effects on egg production, egg-hatching rate and female life span of the tropical calanoid copepod Acartia bilobata. Aquaculture Research 45:1659–71. doi:10.1111/are.12113.
  • Parrish, C. C., V. M. French, and M. J. Whiticar. 2012. Lipid class and fatty acid composition of copepods (Calanus finmarchicus, C. glacialis, Pseudocalanus sp., Tisbe furcata and Nitokra lacustris) fed various combinations of autotrophic and heterotrophic protists. Journal of Plankton Research 34:356–75. doi:10.1093/plankt/fbs003.
  • Payne, M. F., and R. J. Rippingale. 2000. Rearing West Australian seahorse, Hippocampus subelongatus, juveniles on copepod nauplii and enriched Artemia. Aquaculture 188:353–61. doi:10.1016/S0044-8486(00)00349-5.
  • Pelegri, S. P., J. Dolan, and F. Rassoulzadegan. 1999. Use of high temperature catalytic oxidation (HTCO) to measure carbon content of microorganisms. Aquatic Microbial Ecology 16:273–80. doi:10.3354/ame016273.
  • Puello-Cruz, A. C., S. Mezo-Villalobos, B. González-Rodríguez, and D. Voltolina. 2009. Culture of calanoid copepod Pseudodiaptomus euryhalinus (Johnson 1939) with different microalgal diets. Aquaculture 290:317–19. doi:10.1016/j.aquaculture.2009.02.016.
  • Rajkumar, M., and M. M. Rahman. 2016. Culture of the Calanoid Copepod, Acartia erythraea and Cyclopoid Copepod, Oithona brevicornis with various microalgal diets. Sains Malaysiana 45:615–20.
  • Rasdi, N. W., and J. G. Qin. 2016. Improvement of copepod nutritional quality as live food for aquaculture: A review. Aquaculture Research 47:1–20. doi:10.1111/are.12471.
  • Renaud, S. M., L. V. Thinh, and D. L. Parry. 1999. The gross chemical composition and fatty acid composition of 18 species of tropical Australian microalgae for possible use in mariculture. Aquaculture 170:147–59. doi:10.1016/S0044-8486(98)00399-8.
  • Safdar, W., M. Shamoon, X. Zan, J. Haider, H. R. Sharif, M. Shoaib, and Y. Song. 2017. Growth kinetics, fatty acid composition and metabolic activity changes of Crypthecodinium cohnii under different nitrogen source and concentration. AMB Express 7:85. doi:10.1186/s13568-017-0384-3.
  • Shin, K., M. C. Jang, P. K. Jang, S. J. Ju, T. K. Lee, and M. Chang. 2003. Influence of food quality on egg production and viability of the marine planktonic copepod Acartia omorii. Progress in Oceanography 57:265–77. doi:10.1016/S0079-6611(03)00101-0.
  • Siqwepu, O., N. B. Richoux, and N. G. Vine. 2017. The effect of different dietary microalgae on the fatty acid profile, fecundity and population development of the calanoid copepod Pseudodiaptomus hessei (Copepoda: Calanoida). Aquaculture 468:162–68. doi:10.1016/j.aquaculture.2016.10.008.
  • Stoecker, D. K., and J. M. Capuzzo. 1990. Predation on protozoa: Its importance to zooplankton. Journal of Plankton Research 12:891–908. doi:10.1093/plankt/12.5.891.
  • Stoecker, D. K., and N. K. Sanders. 1985. Differential grazing by Acartia tonsa on a dinoflagellate and a tintinnid. Journal of Plankton Research 7:85–100. doi:10.1093/plankt/7.1.85.
  • Støttrup, J. G., and J. Jensen. 1990. Influence of algal diet on feeding and egg-production of the calanoid copepod Acartia tonsa Dana. Journal of Experimental Marine Biology and Ecology 141:87–105. doi:10.1016/0022-0981(90)90216-Y.
  • Tang, K. W., and M. Taal. 2005. Trophic modification of food quality by heterotrophic protists: Species-specific effects on copepod egg production and egg hatching. Journal of Experimental Marine Biology and Ecology 318:85–98. doi:10.1016/j.jembe.2004.12.004.
  • Verity, P. G., and G. A. Paffenhöfer. 1996. On assessment of prey ingestion by copepods. Journal of Plankton Research 18:1767–79. doi:10.1093/plankt/18.10.1767.
  • Zhang, J., C. Wu, D. Pellegrini, G. Romano, F. Esposito, A. Ianora, and I. Buttino. 2013. Effects of different monoalgal diets on egg production, hatching success and apoptosis induction in a Mediterranean population of the calanoid Acartia tonsa (Dana). Aquaculture 400–401:65–72. doi:10.1016/j.aquaculture.2013.02.032.

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