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Dietary supplementation of astaxanthin krill oil enhances the growth performance of juvenile Litopenaeus vannamei raised intensively in enclosed and exposed tank systems under salinity stress

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References

  • Castille, F. L., and A. L. Lawrence. 1981. The effect of salinity on the osmotic, sodium and chloride concentrations in the hemolymph of euryhaline shrimp of the genus Penaeus. Comparative Biochemistry & Physiology A 68A (1):75–80. doi:https://doi.org/10.1016/0300-9629(81)90320-0.
  • Castro, O. S., L. Burri, and A. J. P. Nunes. 2018. Astaxanthin krill oil enhances the growth performance and fatty acid composition of the Pacific whiteleg shrimp, Litopenaeus vannamei, reared under hypersaline conditions. Aquaculture Nutrition 24 (1):442–52. doi:https://doi.org/10.1111/anu.12577.
  • Chen, K., E. Li, C. Xu, X. Wang, H. Li, J. G. Qin, and L. Chen. 2019. Growth and metabolomic responses of Pacific white shrimp (Litopenaeus vannamei) to different dietary fatty acid sources and salinity levels. Aquaculture 499:329–40. doi:https://doi.org/10.1016/j.aquaculture.2018.09.056.
  • Esparza‐Leal, H. M., F. J. Magallón‐Barajas, G. Portillo‐Clark, R. Perez‐Enriquez, P. Álvarez‐Ruíz, C. M. Escobedo‐Bonilla, J. Méndez‐Lozano, N. Mañón‐Ríos, R. C. Valerio‐García, J. Hernández‐López, et al. 2010. Infection of WSSV-negative shrimp, Litopenaeus vannamei, cultivated under fluctuating temperature conditions. Journal of the World Aquaculture Society 41 (6):912–22. doi:https://doi.org/10.1111/j.1749-7345.2010.00434.x.
  • Ewan, R. C. 1989. Predicting the energy utilization of diets and feed ingredients by pigs. In Energy metabolism. European Association of Animal Production Bulletin No. 43, ed. Y. V. Honing and W. H. Close, 271–74. Wageningen, Netherlands: Pudoc.
  • Façanha, F. N., A. R. Oliveira-Neto, C. Figueiredo-Silva, and A. J. P. Nunes. 2016. Effect of shrimp stocking density and graded levels of dietary methionine over the growth performance of Litopenaeus vannamei reared in a green-water system. Aquaculture 463:16–21. doi:https://doi.org/10.1016/j.aquaculture.2016.05.024.
  • Façanha, F. N., H. Sabry-Neto, C. Figueiredo-Silva, A. R. Oliveira-Neto, and A. J. P. Nunes. 2018. Minimum water exchange spares the requirement for dietary methionine for juvenile Litopenaeus vannamei reared under intensive outdoor conditions. Aquaculture Research 49 (4):1682–89. doi:https://doi.org/10.1111/are.13624.
  • Gong, H, D.-H. Jiang, D. V. Lightner, C. Collins, and D. Brock. 2004. A dietary modification approach to improve the osmoregulatory capacity of litopenaeus vannamei cultured in the arizona desert. Aquaculture Nutrition 10 (4):227-236. doi: https://doi.org/10.1111/anu.2004.10.issue-4.
  • Granja, C. B., O. M. Vidal, G. Parra, and M. Salazar. 2006. Hyperthermia reduces viral load of white spot syndrome virus in Penaeus vannamei. Diseases of Aquatic Organisms 68:175–80. doi:https://doi.org/10.3354/dao068175.
  • Hurtado, M. A., I. S. Racotta, O. Arjona, M. Hernández-Rodríguez, E. Goytortua, R. Civera, and E. Palacios. 2006. Effect of hypo- and hyper-saline conditions on osmolarity and fatty acid composition of juvenile shrimp Litopenaeus vannamei (Boone, 1931) fed low- and high-HUFA diets. Aquaculture Research 37 (13):1316–26. doi:https://doi.org/10.1111/j.1365-2109.2006.01568.x.
  • Hurtado, M. A., I. S. Racotta, R. Civera, L. Ibarra, M. Hernández-Rodríguez, and E. Palacios. 2007. Effect of hypo and hypersaline conditions on osmolality and na+/k+-atpase activity in juvenile shrimp (litopenaeus vannamei) fed low- and high-hufa diets. Comparative Biochemistry And Physiology Part A: Molecular & Integrative Physiology 147 (3):703-710. doi: https://doi.org/10.1016/j.cbpa.2006.07.002.
  • Jaffer, Y. D., R. Saraswathy, M. Ishfaq, J. Antony, D. S. Bundela, and P. C. Sharma. 2020. Effect of low salinity on the growth and survival of juvenile pacific white shrimp, Penaeus vannamei: A revival. Aquaculture 515:734561. doi:https://doi.org/10.1016/j.aquaculture.2019.734561.
  • Li, E., L. Chen, C. Zeng, N. Yua, Z. Xiong, X. Chen, and J. G. Qin. 2008. Comparison of digestive and antioxidant enzymes activities, haemolymph oxyhemocyanin contents and hepatopancreas histology of white shrimp, Litopenaeus vannamei, at various salinities. Aquaculture 274 (1):80–86. doi:https://doi.org/10.1016/j.aquaculture.2007.11.001.
  • Moreno‐Figueroa, L. D., H. Villarreal‐Colmenares, J. Naranjo‐Páramo, M. Vargas‐Mendieta, L. Mercier, R. Casillas‐Hernández, and A. Hernández‐Llamas. 2019. Bioeconomic modelling of the intensive production of white‐leg shrimp (Litopenaeus vannamei) in a photo‐heterotrophic hypersaline system, with minimal seawater replacement. Reviews in Aquaculture 11 (3):685–96. doi:https://doi.org/10.1111/raq.12252.
  • Moreno‐Figueroa, L. D., J. Naranjo‐Páramo, A. Hernández‐Llamas, M. Vargas‐Mendieta, J. A. Hernández‐Gurrola, and H. Villarreal‐Colmenares. 2018. Performance of a photo‐heterotrophic, hypersaline system for intensive cultivation of white leg shrimp (Litopenaeus vannamei) with minimal water replacement in lined ponds using a stochastic approach. Aquaculture Research 49 (1):57–67. doi:https://doi.org/10.1111/are.13432.
  • Moser, J. R., D. A. G. Álvarez, F. M. Cano, T. E. Garcia, D. E. C. Molina, G. P. Clark, M. R. F. Marques, F. J. M. Barajas, and J. H. López. 2012. Water temperature influences viral load and detection of white spot syndrome virus (WSSV) in Litopenaeus vannamei and wild crustaceans. Aquaculture 326–329:9–14. doi:https://doi.org/10.1016/j.aquaculture.2011.10.033.
  • Nguyen, K. A. T., K. A. T. Nguyen, and C. Jolly. 2019. Is super-intensification the solution to shrimp production and export sustainability? Sustainability 11 (19):1–22. doi:https://doi.org/10.3390/su11195277.
  • Nunes, A. J. P., and G. J. Parsons. 2000. Size-related feeding and gastric evacuation measurements for the Southern brown shrimp Penaeus subtilis. Aquaculture 187 (1–2):133–51. doi:https://doi.org/10.1016/S0044-8486(99)00386-5.
  • Nunes, A. J. P., H. Sabry-Neto, F. H. P. Silva, A. R. Oliveira-Neto, and K. Masagounder. 2019. Multiple feedings enhance the growth performance and feed efficiency of juvenile Litopenaeus vannamei when fed a low-fish meal amino acid-supplemented diet. Aquaculture International 27 (2):337–47. doi:https://doi.org/10.1007/s10499-018-0330-7.
  • Nunes, A. J. P., M. V. C. Sá, and H. Sabry-Neto. 2011. Growth performance of the white shrimp, Litopenaeus vannamei, fed on practical diets with increasing levels of the Antarctic krill meal, Euphausia superba, reared in clear- versus green-water culture tanks. Aquaculture Nutrition 17 (2):511–20. doi:https://doi.org/10.1111/j.1365-2095.2010.00791.x.
  • Perez‐Velazquez, M., M. L. González‐Félix, F. Jaimes‐Bustamente, L. R. Martínez‐Córdova, D. A. Trujillo‐Villalba, and D. A. Davis. 2007. Investigation of the effects of salinity and dietary protein level on growth and survival of Pacific white shrimp, Litopenaeus vannamei. Journal of the World Aquaculture Society 38 (4):475–85. doi:https://doi.org/10.1111/j.1749-7345.2007.00121.x.
  • Ponce-Palafox, J. T., A. A. Pavia, D. G. M. López, J. L. Arredondo-Figueroa, F. Lango-Reynoso, M. R. Castañeda-Chávez, H. Esparza-Leal, A. Ruiz-Luna, F. Páez-Ozuna, S. G. Castillo-Vargasmachuca, et al. 2019. Response surface analysis of temperature-salinity interaction effects on water quality, growth and survival of shrimp Penaeus vannamei postlarvae raised in biofloc intensive nursery production. Aquaculture 503:312–21. doi:https://doi.org/10.1016/j.aquaculture.2019.01.020.
  • Ray, A. J. 2012. Biofloc technology for super-intensive shrimp culture. In Biofloc technology - A practical guide book, ed. Y. Avnimelech, 4–27. 2nd ed. Baton Rouge, Louisiana, USA: The World Aquaculture Society.
  • Samocha, T. M., D. I. Prangnell, T. R. Hanson, G. D. Treece, T. C. Morris, L. F. Castro, and N. Staresinic. 2017. Design and operation of super intensive, biofloc-dominated systems for indoor production of the Pacific white shrimp, Litopenaeus vannamei – The Texas A&M Agrilife Research experience. Baton Rouge, Louisiana, USA: The World Aquaculture Society.
  • Saoud, I. P., and D. A. Davis. 2005. Effects of betaine supplementation to feeds of Pacific white shrimp Litopenaeus vannamei reared at extreme salinities. North American Journal of Aquaculture 67 (4):351–53. doi:https://doi.org/10.1577/A05-005.1.
  • Van Wyk, P., and J. Scarpa. 1999. Water quality requirements and management. In Farming marine shrimp in recirculating freshwater systems, ed. P. Van Wyk, 141–62. Tallahassee, Florida, USA: Florida Department of Agriculture and Consumer Services.
  • Vidal, O. M., C. B. Granja, F. Aranguren, J. A. Brock, and M. Salazar. 2001. A profound effect of hyperthermia upon the survival of L. vannamei juveniles infected with the WSSV. Journal of the World Aquaculture Society 32 (4):364–72. doi:https://doi.org/10.1111/j.1749-7345.2001.tb00462.x.
  • Wang, W., M. Ishikawa, S. Koshio, S. Yokoyama, M. S. Hossain, and A. S. Moss. 2018. Effects of dietary astaxanthin supplementation on juvenile kuruma shrimp, Marsupenaeus japonicus. Aquaculture 491:197–204. doi:https://doi.org/10.1016/j.aquaculture.2018.03.025.

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