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Carotenoid content and composition: A special focus on commercially important fish and shellfish

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References

  • Al-Delaimy, W. K., P. Ferrari, N. Slimani, V. Pala, I. Johansson, S. Nilsson, I. Mattisson, E. Wirfalt, R. Galasso, D. Palli, et al. 2005. Plasma carotenoids as biomarkers of intake of fruits and vegetables: Individual-level correlations in the European Prospective Investigation into Cancer and Nutrition (EPIC). European Journal of Clinical Nutrition 59 (12):1387–96. doi: 10.1038/sj.ejcn.1602252.
  • Alfnes, F., A. G. Guttormsen, G. Steine, and K. Kolstad. 2006. Consumers’ willingness to pay for the color of salmon: A choice experiment with real economic incentives. American Journal of Agricultural Economics 88 (4):1050–61. doi: 10.1111/j.1467-8276.2006.00915.x.
  • Ambati, R. R., D. Gogisetty, R. G. Aswathanarayana, S. Ravi, P. N. Bikkina, L. Bo, and S. Yuepeng. 2019. Industrial potential of carotenoid pigments from microalgae: Current trends and future prospects. Critical Reviews in Food Science and Nutrition 59 (12):1880–902. doi: 10.1080/10408398.2018.1432561.
  • Amorim-Carrilho, K. T., A. Cepeda, C. Fente, and P. Regal. 2014. Review of methods for analysis of carotenoids. TrAC Trends in Analytical Chemistry 56:49–73. doi: 10.1016/j.trac.2013.12.011.
  • Andersen, H. J., G. Bertelsen, A. G. Christophersen, A. Ohlen, and L. H. Skibsted. 1990. Development of rancidity in salmonoid steaks during retail display. A comparison of practical storage life of wild salmon and farmed rainbow trout. Zeitschrift Fur Lebensmittel-Untersuchung und -Forschung 191 (2):119–22. doi: 10.1007/BF01202636.
  • Bauer, R. T. 1982. Polymorphism of colour pattern in the caridean shrimps Heptacarpus pictus and H. paludicola. Marine Behaviour and Physiology 8 (3):249–65. doi: 10.1080/10236248209387022.
  • Bhattacharya, S., G. S. Choudhury, and S. Studebaker. 1994. Color changes during thermal processing of Pacific chum salmon. Journal of Aquatic Food Product Technology 3 (1):39–48. doi: 10.1300/J030v03n01_05.
  • Bjerkeng, B. 2000. Carotenoid pigmentation of salmonid fishes - recent progress. In Advances in aquatic nutrition proceedings of the international symposium on aquatic nutrition, ed. L. E. Cruz-Suarez, D. Ricque-Marie, M. TapiaSalazar, M. A. Olvera-Novoa, R. y Civera-Cerecedo, 19–22. Yucatan: Merida.
  • Böhm, V., G. Lietz, B. Olmedilla-Alonso, D. Phelan, E. Reboul, D. Bánati, P. Borel, J. Corte-Real, A. R. de Lera, C. Desmarchelier, et al. 2021. From carotenoid intake to carotenoid blood and tissue concentrations – implications for dietary intake recommendations. Nutrition Reviews 79 (5):544–73. doi: 10.1093/nutrit/nuaa008.
  • Borodina, A. V. 2016. Effect of food deprivation on transformation of carotenoids in the bivalve mollusc Anadara kagoshimensis (Tokunaga, 1906). Journal of Evolutionary Biochemistry and Physiology 52 (4):282–91. doi: 10.1134/S0022093016040025.
  • Borodina, A. V. 2018. Carotenoids in the gonads of the bivalve mollusc Anadara kagoshimensis (Tokunage, 1906). Journal of Evolutionary Biochemistry and Physiology 54 (4):267–72. doi: 10.1134/S0022093018040026.
  • Borodina, A. V., T. Maoka, and A. A. Soldatov. 2013. Composition and content of carotenoids in body of the Black sea gastropod Rapana venosa (Valenviennes, 1846). Journal of Evolutionary Biochemistry and Physiology 49 (3):283–90. doi: 10.1134/S002209301303002X.
  • Borodina, A. V., and A. A. Soldatov. 2014. Carotenoids in tissues of mass species of Black Sea mollusks. In Chernomorskie mollyuski: element of comparative and ecological biochemistry (Mollusks of the Black Sea: Elements of comparative and ecological biochemistry), ed. G. E. Shulman and A. A. Soldatov, ch. 3, 87–168.
  • Borodina, A. V., and P. A. Zadorozhny. 2020. The annual dynamics of tissue carotenoids in a bivalve mollusc Cerastoderma glaucum (Bruguiere, 1789). Journal of Evolutionary Biochemistry and Physiology 56 (1):1–10. doi: 10.1134/S0022093020010019.
  • Capelli, B., D. Bagchi, and G. R. Cysewski. 2013. Synthetic astaxanthin is significantly inferior to algal-based astaxanthin as an antioxidant and may not be suitable as a human nutraceutical supplement. Nutrafoods 12 (4):145–52. doi: 10.1007/s13749-013-0051-5.
  • Carss, D. N., A. C. Brito, P. Chainho, A. Ciutat, X. de Montaudouin, R. M. Fernández Otero, M. I. Filgueira, A. Garbutt, M. A. Goedknegt, S. A. Lynch, et al. 2020. Ecosystem services provided by a non-cultured shellfish species: The common cockle Cerastoderma edule. Marine Environmental Research 158:104931. doi: 10.1016/j.marenvres.2020.104931.
  • Choubert, G. 2001. Carotenoids and pigmentation. In Nutrition and feeding of fish and crustaceans, ed. J. Guillaume, S. J. Kaushik, P. Bergot, and R. Metailler, 183–96. Chichester: Praxis Publishing.
  • Choubert, G., and M. Baccaunaud. 2010. Effect of moist or dry heat cooking procedures on carotenoid retention and colour of fillets of rainbow trout (Oncorhynchus mykiss) fed astaxanthin or canthaxanthin. Food Chemistry 119 (1):265–9. doi: 10.1016/j.foodchem.2009.06.023.
  • Choubert, G., F. Brisbarre, and M. Baccaunaud. 2011. Impact of dietary carotenoid and packaging during frozen storage on the quality of rainbow trout (Oncorhynchus mykiss) fed carotenoids. Journal of the Science of Food and Agriculture 91 (6):1075–82. doi: 10.1002/jsfa.4286.
  • Choubert, G., J. Cravedi, and M. Laurentie. 2009. Effect of alternate distribution of astaxanthin on rainbow trout (Oncorhynchus mykiss) muscle pigmentation. Aquaculture 286 (1–2):100–4. doi: 10.1016/j.aquaculture.2008.09.001.
  • Christophersen, A. G., G. Bertelsen, H. J. Andersen, P. Knuthsen, and L. H. Skibsted. 1992. Storage life of frozen salmonids. Effect of light and packaging conditions on carotenoid oxidation and lipid oxidation. Zeitschrift for Lebensmittel-Untersuchung und -Forschung 194 (2):115–9. doi: 10.1007/BF01190179.
  • Cobbs, C., J. Heath, J. O. Stireman, and P. Abbot. 2013. Carotenoids in unexpected places: Gall midges, lateral gene transfer, and carotenoid biosynthesis in animals. Molecular Phylogenetics and Evolution 68 (2):221–8. doi: 10.1016/j.ympev.2013.03.012.
  • Çolakoğlu, S., G. Türker, İ. Ak, and F. Çolakoğlu. 2019. Antioxidant activity of Mytilus galloprovincialis and Ruditapes philippinarum. Turkish Journal of Agriculture - Food Science and Technology 7 (sp1):150–3. doi: 10.24925/turjaf.v7isp1.150-153.2790.
  • Czeczuga, B., J. Semeniuk, and E. Czeczuga-Semenjuk. 2013. Amount and qualities of carotenoids in fillets of fish species fed with natural feed in some fisheries of West African Coast. African Journal of Biotechnology 12 (12):1443–8.
  • Donaldson, M. S. 2011. A carotenoid health index based on plasma carotenoids and health outcomes. Nutrients 3 (12):1003–22. doi: 10.3390/nu3121003.
  • Elia, A. C., M. Prearo, A. J. M. Dörr, N. Pacini, G. Magara, P. Brizio, L. Gasco, and M. C. Abete. 2019. Effects of astaxanthin and canthaxanthin on oxidative stress biomarkers in rainbow trout. Journal of Toxicology and Environmental Health. Part A 82 (13):760–8. doi: 10.1080/15287394.2019.1648346.
  • Esatbeyoglu, T., and G. Rimbach. 2017. Canthaxanthin: From molecule to function. Molecular Nutrition and Food Research 61 (6):1600469.
  • Fujiwara, Y., T. Maoka, M. Ookubo, and T. Matsuno. 1992. Crassostreaxanthin A and B, novel marine carotenoids from the oyster Crassostrea gigas. Tetrahedron Letters 33 (34):4941–4. doi: 10.1016/S0040-4039(00)61240-6.
  • Garcia, L. A. T., M. A. Nascimento, and C. R. M. Barardi. 2015. Effect of UV light on the inactivation of recombinant human adenovirus and murine norovirus seeded in seawater in shellfish depuration tanks. Food and Environmental Virology 7 (1):67–75. doi: 10.1007/s12560-014-9177-x.
  • García-López, M., R. I. Pérez-Martín, and C. G. Sotelo. 2016. Carotenoid pigments composition of two commonly discarded decapod crustaceans in Grand Sole and the Galician-Northern Portugal Coast fisheries. Journal of Aquatic Food Product Technology 25 (1):114–21. doi: 10.1080/10498850.2013.830279.
  • Gill, J. K., A. A. Franke, J. Steven Morris, R. V. Cooney, L. R. Wilkens, L. Le Marchand, M. T. Goodman, B. E. Henderson, and L. N. Kolonel. 2009. Association of selenium, tocopherols, carotenoids, retinol, and 15-isoprostane F2t in serum or urine with prostate cancer risk: The multiethnic cohort. Cancer Causes & Control: CCC 20 (7):1161–71. doi: 10.1007/s10552-009-9304-4.
  • Goralczyk, R. 2009. ß-carotene and lung cancer in smokers: Review of hypotheses and status of research. Nutrition and Cancer 61 (6):767–74. doi: 10.1080/01635580903285155.
  • Gostyukhina, O. L., and A. V. Borodina. 2020. Carotenoid content and antioxidant status in tissues of the Eurybiontic bivalve mollusk Cerastoderma glaucum. Comparative and Ontogenic Biochemistry 56 (3):185–96.
  • Gostyukhina, O. L., A. A. Soldatov, I. V. Golovina, and A. V. Borodina. 2013. Content of carotenoids and the state of tissue antioxidant enzymatic complex in bivalve mollusc Anadara inaequivalvis Br. Journal of Evolutionary Biochemistry and Physiology 49 (3):309–15. doi: 10.1134/S0022093013030055.
  • Gradelet, S., A. M. Le Bon, R. Bergès, M. Suschetet, and P. Astorg. 1998. Dietary carotenoids inhibit aflatoxin B1-induced liver preneoplastic foci and DNA damage in the rat: Role of the modulation of aflatoxin B1 metabolism. Carcinogenesis 19 (3):403–11. doi: 10.1093/carcin/19.3.403.
  • Granneman, J. G., V. A. Kimler, H. Zhang, X. Ye, X. Luo, J. H. Postlethwait, and R. Thummel. 2017. Lipid droplet biology and evolution illuminated by the characterization of a novel perilipin in teleost fish. eLife 6:e21771. doi: 10.7554/eLife.21771.
  • Grienke, U., J. Silke, and D. Tasdemir. 2014. Bioactive compounds from marine mussels and their effects on human health. Food Chemistry 142:48–60. doi: 10.1016/j.foodchem.2013.07.027.
  • Grune, T., G. Lietz, A. Palou, A. C. Ross, W. Stahl, G. Tang, D. Thurnham, S-a Yin, and H. K. Biesalski. 2010. β-carotene is an important vitamin A source for humans. The Journal of Nutrition 140 (12):2268S–285. doi: 10.3945/jn.109.119024.
  • Hashimoto, T., Y. Ozaki, M. Taminato, S. K. Das, M. Mizuno, K. Yoshimura, T. Maoka, and K. Kanazawa. 2009. The distribution and accumulation of fucoxanthin and its metabolites after oral administration in mice. British Journal of Nutrition 102 (2):242–8. doi: 10.1017/S0007114508199007.
  • Helgeland, H., M. Sodeland, N. Zoric, J. S. Torgersen, F. Grammes, J. von Lintig, T. Moen, S. Kjøglum, S. Lien, D. I. Våge, et al. 2019. Genomic and functional gene studies suggest a key role of beta-carotene oxygenase 1 like (bcol1) gene in salmon flesh color. Scientific Reports 9 (1):20061. doi: 10.1038/s41598-019-56438-3.
  • Higuera-Ciapara, I., L. Felix-Valenzuela, and F. M. Goycoolea. 2006. Astaxanthin: A review of its chemistry and application. Critical Reviews in Food Science and Nutrition 46 (2):185–96. doi: 10.1080/10408690590957188.
  • Hirayama, O., K. Nakamura, S. Hamada, and Y. Kobayasi. 1994. Singlet oxygen quenching ability of naturally occurring carotenoids. Lipids 29 (2):149–50. doi: 10.1007/BF02537155.
  • Hu, B., M. Ferrell, C. E. Lim, and D. A. Davis. 2012. Evaluation of traditional diet and corn gluten feed substituted alternative diet for pond-raised hybrid catfish on production and xanthophyll level. Aquaculture 354–355:22–6. doi: 10.1016/j.aquaculture.2012.04.038.
  • Industry Research Biz Industry. 2020. Natural carotenoids market growth analysis 2021 - Global scope, demand and development status, recent trends, revenue, price, gross profit, and top key players forecast to 2027. https://www.industryresearch.biz/enquiry/request-sample/17382017
  • Jin, W., L. Yang, Z. Yi, H. Fang, W. Chen, Z. Hong, Y. Zhang, G. Zhang, and L. Li. 2020. Anti-inflammatory effects of fucoxanthinol in LPS-induced RAW264.7 cells through the NAAA-PEA pathway. Marine Drugs 18 (4):222. doi: 10.3390/md18040222.
  • Karnaukhov, V. N. 1990. Carotenoids: Recent progress, problems and prospects. Comparative Biochemistry and Physiology Part B: Comparative Biochemistry 95 (1):1–20. doi: 10.1016/0305-0491(90)90241-K.
  • Kizilkaya, B., S. Acarli, P. V. Ertuğrul, S. Berber, and P. Çelik. 2021. Variation in radical antioxidant capacity and the total amount of carotenoids in razor clams, Ensis marginatus (Pennant, 1777), from the Canakkale Strait (Abidealti), Turkey. Oceanological and Hydrobiological Studies 50 (1):16–23. doi: 10.2478/oandhs-2021-0002.
  • Kleinig, H., and K. Egger. 1967. Carotenoids of vaucheriale vaucheria adBotrydium (Xanthophyceae). Zeitschrift Fur Naturforschung. Teil B, Chemie, Biochemie, Biophysik, Biologie Und Verwandte Gebiete 22 (8):868–72. doi: 10.1515/znb-1967-0815.
  • Konishi, I., M. Hosokawa, T. Sashima, H. Kobayashi, and K. Miyashita. 2006. Halocynthiaxanthin and fucoxanthinol isolated from Halocynthia roretzi induce apoptosis in human leukemia breast and colon cancer cells. Comparative Biochemistry and Physiology. Toxicology & Pharmacology: CBP 142 (1–2):53–9. doi: 10.1016/j.cbpc.2005.10.005.
  • Konishi, I., M. Hosokawa, T. Sashima, T. Maoka, and K. Miyashita. 2008. Suppressive effects of alloxanthin and diatoxanthin from Halocynthia roretzi on LPS-induced expression of pro-inflammatory genes in RAW264.7 cells. Journal of Oleo Science 57 (3):181–9. doi: 10.5650/jos.57.181.
  • Kotake-Nara, E., A. Asai, and A. Nagao. 2005. Neoxanthin and fucoxanthin induce apoptosis in PC-3 human prostate cancer cells. Cancer Letters 220 (1):75–84. doi: 10.1016/j.canlet.2004.07.048.
  • Leclercq, E., J. R. Dick, J. F. Taylor, J. G. Bell, D. Hunter, and H. Migaud. 2010. Seasonal variations in skin pigmentation and flesh quality of Atlantic salmon (Salmo salar L.): Implications for quality management. Journal of Agricultural and Food Chemistry 58 (11):7036–45. doi: 10.1021/jf100723b.
  • Lehnert, S. J., K. A. Christensen, W. E. Vandersteen, D. Sakhrani, T. E. Pitcher, J. W. Heath, B. F. Koop, D. D. Heath, and R. H. Devlin. 2019. Carotenoid pigmentation in salmon: Variation in expression at BCO2-l locus controls a key fitness trait affecting red coloration. Proceedings. Biological Sciences 286 (1913):20191588. doi: 10.1098/rspb.2019.1588.
  • Lerfall, J., E. Å. Bendiksen, J. V. Olsen, D. Morrice, and M. Østerlie. 2016b. A comparative study of organic- versus conventional farmed Atlantic salmon. I. Pigment and lipid content and composition, and carotenoid stability in ice-stored fillets. Aquaculture 451:170–7. doi: 10.1016/j.aquaculture.2015.09.013.
  • Lerfall, J., E. Å. Bendiksen, J. V. Olsen, and M. Østerlie. 2016a. A comparative study of organic- versus conventional Atlantic salmon. II. Fillet color, carotenoid- and fatty acid composition as affected by dry salting, cold smoking and storage. Aquaculture 451:369–76. doi: 10.1016/j.aquaculture.2015.10.004.
  • Li, X., Z. Bai, H. Luo, G. Wang, and J. Li. 2014. Comparative analysis of total carotenoid content in tissues of purple and white inner-shell color pearl mussel, Hyriopsis cumingii. Aquaculture International 22 (5):1577–85. doi: 10.1007/s10499-014-9766-6.
  • Li, N., J. Hu, S. Wang, J. Cheng, X. Hu, Z. Lu, Z. Lin, W. Zhu, and Z. Bao. 2010. Isolation and identification of the main carotenoid pigment from the rare orange muscle of the Yesso scallop. Food Chemistry 118 (3):616–9. doi: 10.1016/j.foodchem.2009.05.043.
  • Lira, G. M., A. M. Q. Lopez, G. O. Firmino, et al. 2017. Total carotenoids and antioxidant activity of fillets and shells (in nature or cooked) of “Vila Franca” shrimp (Litopenaeus Schmitti) in different intervals of storage under freezing. Animal Science and Veterinary 41 (1).
  • Liu, H., H. P. Zheng, H. K. Zhang, et al. 2015. A de novo transcriptome of the noble scallop, Chlamys nobilis, focusing on mining transcripts for carotenoid-based coloration. BMC Genomics 16 (1):44.
  • Li, X., S. Wang, X. Xun, M. Zhang, S. Wang, H. Li, L. Zhao, Q. Fu, H. Wang, T. Li, et al. 2019. A carotenoid oxygenase is responsible for muscle coloration in scallop. Biochimica et Biophysica Acta. Molecular and Cell Biology of Lipids 1864 (7):966–75. doi: 10.1016/j.bbalip.2019.03.003.
  • López, A. M. Q., F. A. R. d. Santos, E. S. Martins, A. L. d. S. Silva, and E. C. L. d. Santos. 2021. Pink and white shrimps from the Brazilian coast: Pigment identification, antioxidant activity and microbial quality under different feezing times. Food Science and Technology 41 (suppl 2):447–57. doi: 10.1590/fst.29920.
  • Maeda, H., M. Hosokawa, T. Sashima, N. Takahashi, T. Kawada, and K. Miyashita. 2006. Fucoxanthin and its metabolite, fucoxanthinol, suppress adipocyte differentiation in 3T3-L1 cells. International Journal of Molecular Medicine 18 (1):147–52.
  • Maoka, T. 2016. Structural studies of carotenoids in plants, animals, and food products. In Carotenoids: Nutrition, analysis and technology, ed. A. Kaczor and M. Baranska. Chichester, UK: John Wiley & Sons.
  • Maoka, T. 2009. Recent progress in structural studies of carotenoids in animals and plants. Archives of Biochemistry and Biophysics 483 (2):191–5. doi: 10.1016/j.abb.2008.10.019.
  • Maoka, T. 2020. Carotenoids as natural functional pigments. Journal of Natural Medicines 74 (1):1–16. doi: 10.1007/s11418-019-01364-x.
  • Maoka, T., N. Akimoto, M. Murakoshi, K. Sugiyama, and H. Nishino. 2010. Carotenoids in clams, Ruditapes philippinarum and Meretrix petechialis. Journal of Agricultural and Food Chemistry 58 (9):5784–8. doi: 10.1021/jf1006243.
  • Maoka, T., T. Etoh, A. V. Borodina, and A. A. Soldatov. 2011. A series of 19’-Hexanoyloxyfucoxanthin derivatives from the sea mussel, Mytilus galloprovincialis, grown in the Black Sea, Ukraine. Journal of Agricultural and Food Chemistry 59 (24):13059–64. doi: 10.1021/jf2035115.
  • Maoka, T., Y. Fujiwara, K. Hashimoto, and N. Akimoto. 2005. Carotenoids in three species of Corbicula clams, Corbicula japonica, Corbicula sandai, and Corbicula sp. (Chinese freshwater Corbicula clam). Journal of Agricultural and Food Chemistry 53 (21):8357–64.
  • Maoka, T., A. Nishino, H. Yasui, Y. Yamano, and A. Wada. 2016. Anti-Oxidative Activity of Mytiloxanthin, a Metabolite of Fucoxanthin in Shellfish and Tunicates. Marine Drugs 14 (5):93. doi: 10.3390/md14050093.
  • Maoka, T., J. Ochi, M. Mori, and Y. Sakagami. 2012. Identification of Carotenoids in the Freshwater Shellfish Unio douglasiae nipponensis, Anodonta lauta, Cipangopaludina chinensis laeta, and Semisulcospira libertina. Journal of Oleo Science 61 (2):69–74. doi: 10.5650/jos.61.69.
  • Merdzhanova, A., D. A. Dobreva, and V. Panayotova. 2018. Comparison of fatty acids, cholesterol, fat soluble vitamins and carotenoids content of skin and edible tissue of farmed African catfish (Clarias gariepinus, Burchell 1822. Ovidius University Annals of Chemistry 29 (1):41–7. doi: 10.2478/auoc-2018-0006.
  • Mitra, S., A. Rauf, A. M. Tareq, S. Jahan, T. B. Emran, T. G. Shahriar, K. Dhama, F. A. Alhumaydhi, A. S. M. Aljohani, M. Rebezov, et al. 2021. Potential health benefits of caroteoid lutein: An updated review. Food and Chemical Toxicology: An International Journal Published for the British Industrial Biological Research Association 154:112328. doi: 10.1016/j.fct.2021.112328.
  • Murakoshi, M., H. Nishino, Y. Satomi, et al. 1992. Potent preventive action of α-carotene against carcinogenesis: Spontaneous liver carcinogenesis and promoting stage of lung and skin carcinogenesis in mice are suppressed more effectively by α-carotene than by β-carotene. Cancer Research 52 (23):6583–7.
  • Nabi, F., M. A. Arain, N. Rajput, M. Alagawany, J. Soomro, M. Umer, F. Soomro, Z. Wang, R. Ye, J. Liu, et al. 2020. Health benefits of carotenoids and potential application in poultry industry: A review. Journal of Animal Physiology and Animal Nutrition 104 (6):1809–18. doi: 10.1111/jpn.13375.
  • No, H. K., and T. Storebakken. 1991. Color stability of rainbow trout fillets during frozen storage. Journal of Food Science 56 (4):969–72. doi: 10.1111/j.1365-2621.1991.tb14618.x.
  • Novoveská, L., M. E. Ross, M. S. Stanley, R. Pradelles, V. Wasiolek, and J.-F. Sassi. 2019. Microalgal carotenoids: A review of production, current markets, regulations, and future direction. Marine Drugs 17 (11):640. doi: 10.3390/md17110640.
  • Olmos, J., R. Gómez, and V. Rubio. 2015. Apoptosis comparison effects between synthetic and natural β‐Carotene from Dunaliella salina on MDA‐MB‐231 breast cancer cells. Journal of Microbial and Biochemical Technology 7:51–6.
  • Omenn, G. S., G. E. Goodman, M. D. Thornquist, J. Balmes, M. R. Cullen, A. Glass, J. P. Keogh, F. L. Meyskens, B. Valanis, J. H. Williams, et al. 1996. Effects of a combination of beta carotene and vitamin A on lung cancer and cardiovascular disease. The New England Journal of Medicine 334 (18):1150–5. doi: 10.1056/NEJM199605023341802.
  • Palozza, P., and N. I. Krinsky. 1992. Astaxanthin and canthaxanthin are potent antioxidants in a membrane model. Archives of Biochemistry and Biophysics 297 (2):291–5. doi: 10.1016/0003-9861(92)90675-M.
  • Pérez Fernández, V., S. Ventura, P. Tomai, R. Curini, and A. Gentili. 2017. Determination of target fat-soluble micronutrients in rainbow trout’s muscle and liver tissues by liquid chromatography with diode array-tandem mass spectrometry detection. Electrophoresis 38 (6):886–96. doi: 10.1002/elps.201600427.
  • Perez-Cornago, A., R. C. Travis, P. N. Appleby, K. K. Tsilidis, A. Tjønneland, A. Olsen, K. Overvad, V. Katzke, T. Kühn, A. Trichopoulou, et al. 2017. Fruit and vegetable intake and prostate cancer risk in the European Prospective Investigation into Cancer and Nutrition (EPIC). International Journal of Cancer 141 (2):287–97. doi: 10.1002/ijc.30741.
  • Perry, A., H. Rasmussen, and E. J. Johnson. 2009. Xanthophyll (lutein, zeaxanthin) content in fruits, vegetables and corn and egg products. Journal of Food Composition and Analysis 22 (1):9–15. doi: 10.1016/j.jfca.2008.07.006.
  • Polyakov, N. E., and T. V. Lyeshina. 2006. Some aspects of carotenoid reactivity, redox processes and complex formation. Uspekhi Khimii 75 (12):1175–92.
  • Power, R., J. M. Nolan, A. Prado-Cabrero, W. Roche, R. Coen, T. Power, and R. Mulcahy. 2022. Omega-3 fatty acid, carotenoid and vitamin E supplementation improves working memory in older adults: A randomised clinical trial. Clinical Nutrition (Edinburgh, Scotland) 41 (2):405–14. doi: 10.1016/j.clnu.2021.12.004.
  • Pozo, R., J. Lavety, and R. M. Love. 1988. The role of dietaryα-tocopherol(vitamin E) in stabilizing the canthaxanthin and lipids of rainbow trout muscle. Aquaculture 73 (1–4):165–8. doi: 10.1016/0044-8486(88)90051-8.
  • Pulcini, D., F. Capoccioni, S. Franceschini, M. Martinoli, F. Faccenda, G. Secci, A. Perugini, E. Tibaldi, and G. Parisi. 2021. Muscle pigmentation in rainbow trout (Oncorhynchus mykiss) fed diets rich in natural carotenoids from microalgae and crustaceans. Aquaculture 543:736989. doi: 10.1016/j.aquaculture.2021.736989.
  • Pulcini, D., F. Capoccioni, S. Franceschini, M. Martinoli, and E. Tibaldi. 2020. Skin pigmentation in gilthead seabream (Sparus aurata L.) fed conventional and novel protein sources in diets deprived of fish meal. Animals 10 (11):2138. doi: 10.3390/ani10112138.
  • Quintana-Lopez, A., M. A. Hurtado-Oliva, M. Manzano-Sarabia, et al. 2019. Effect of rearing conditions on astaxanthin accumulation in the white shrimp Penaeus vannamei (Boone, 1931). Latin America Journal of Aquatic Research 47 (2):303–309.
  • Rahman, M. M., S. Khosravi, K. H. Chang, and S.-M. Lee. 2016. Effects of dietary inclusion of astaxanthin on growth, muscle pigmentation and antioxidant capacity of juvenile rainbow trout (Oncorhynchus mykiss). Preventive Nutrition and Food Science 21 (3):281–8. doi: 10.3746/pnf.2016.21.3.281.
  • Ranard, K. M., S. Jeon, E. S. Mohn, J. C. Griffiths, E. J. Johnson, and J. W. Erdman. 2017. Dietary guidance for lutein: Consideration for intake recommendations is scientifically supported. European Journal of Nutrition 56 (Suppl 3):37–42. doi: 10.1007/s00394-017-1580-2.
  • Ribaya-Mercado, J. D, and J. B. Blumberg. 2004. Lutein and zeaxanthin and their potential roles in disease prevention. Journal of the American College of Nutrition 23 (sup6):567S–587. doi: 10.1080/07315724.2004.10719427.
  • Rodriguez-Concepcion, M., J. Avalos, M. L. Bonet, A. Boronat, L. Gomez-Gomez, D. Hornero-Mendez, M. C. Limon, A. J. Meléndez-Martínez, B. Olmedilla-Alonso, A. Palou, et al. 2018. A global perspective on carotenoids: Metabolism, biotechnology, and benefits for nutrition and health. Progress in Lipid Research 70:62–93.
  • Roncarati, A., F. Sirri, A. Felici, L. Stocchi, P. Melotti, and A. Meluzzi. 2011. Effects of dietary supplementation with krill meal on pigmentation and quality of flesh of rainbow trout (Oncorhynchus mykiss). Italian Journal of Animal Science 10 (2):e27-145. doi: 10.4081/ijas.2011.e27.
  • Sachindra, N. M., N. Bhaskar, and N. S. Mahendrakar. 2005a. Carotenoids in different body components of Indian shrimps. Journal of the Science of Food and Agriculture 85 (1):167–72. doi: 10.1002/jsfa.1977.
  • Sachindra, N. M., N. Bhaskar, and N. S. Mahendrakar. 2005b. Carotenoids in crabs from marine and fresh waters of India. LWT - Food Science and Technology 38 (3):221–5. doi: 10.1016/j.lwt.2004.06.003.
  • Sánchez-Camargo, A. P., M. Â. Almeida Meireles, B. L. F. Lopes, and F. A. Cabral. 2011. Proximate composition and extraction of carotenoids and lipids from Brazilian red spotted shrimp waste (Farfantepenaeus paulensis. Journal of Food Engineering 102 (1):87–93. doi: 10.1016/j.jfoodeng.2010.08.008.
  • Satia, J. A., A. Littman, C. G. Slatore, J. A. Galanko, and E. White. 2009. Long-term use of beta-carotene, retinol, lycopene, and lutein supplements and lung cancer risk: Results from the vitamins and lifestyle (VITAL) study. American Journal of Epidemiology 169 (7):815–28.
  • Schiedt, K. 1998. Absorption andmetabolismof carotenoids in birds, fish and crustacean. In Carotenoids, ed. G. Britton, S. Liaaen-Jensen, and H. Pfander, 285–358. Basel, Switzerland: Birkhauser.
  • Scott, T. M., B. A. Rasco, and R. W. Hardy. 1995. Stability of krill meal, astaxanthin and canthaxanthin color in cultured rainbow trout (Oncorhynchus mykiss) fillets during frozen storage and cooking. Journal of Aquatic Food Product Technology 3 (4):53–63. doi: 10.1300/J030v03n04_05.
  • Shardell, M. D., D. E. Alley, G. E. Hicks, S. S. El-Kamary, R. R. Miller, R. D. Semba, and L. Ferrucci. 2011. Low-serum carotenoid concentrations and carotenoid interactions predict mortality in US adults: The Third National Health and Nutrition Examination Survey. Nutrition Research 31 (3):178–89. doi: 10.1016/j.nutres.2011.03.003.
  • Sheehan, E. M., T. P. O’Connor, P. J. A. Sheehy, D. J. Buckley, and R. FitzGerald. 1998. Stability of astaxanthin and canthaxanthin in raw and smoked Atlantic salmon (Salmo salar) during frozen storage. Food Chemistry 63 (3):313–7. doi: 10.1016/S0308-8146(98)00048-X.
  • Shimidzu, N., M. Goto, and W. Miki. 1996. Carotenoids as singlet oxygen quenchers in marine organism. Fisheries Science 62 (1):134–7. doi: 10.2331/fishsci.62.134.
  • Soumya, R, and N. M. Sachindra. 2015. Carotenoids from fishery resources. In Fish processing byproducts: quality assessment and applications, ed. N. M. Sachindra, N. S. Mahendrakar, 273–98. Houston, TX: Studium Press.
  • Srivastava, A. K., and V. K. Singh. 2021. Feeding behaviours in gastropod mollusks. Journal of Cell and Molecular Biology 5 (1):013.
  • Su, F., B. Huang, and J. Liu. 2018. The carotenoids of shrimps (Decapoda: Caridea and Dendrobranchiata) cultured in China. Journal of Crustacean Biology 38 (5):523–30. doi: 10.1093/jcbiol/ruy049.
  • Su, F., and J. Liu. 2019. The carotenoid characteristics of the important wild shrimp Trachysalambria curvirostris (Stimptson, 1860) in China. Journal of Oceanology and Limnology 37 (2):706–12. doi: 10.1007/s00343-019-8018-z.
  • Tang, G. 2014. Vitamin A value of plant food provitamin A—evaluated by the stable isotope technologies. International Journal for Vitamin and Nutrition Research 84 (Supplement 1):25–9. doi: 10.1024/0300-9831/a000183.
  • Tan, K. S., H. L. Liu, H. K. Zhang, et al. 2021a. Carotenoid content and lipid nutritional quality variation in tissues of male and female polymorphic (golden and brown) noble scallop Chlamys nobilis. Aquaculture 536 (736483).
  • Tan, K., H. Liu, H. Zhang, L. Lim, H. Ma, S. Li, and H. Zheng. 2020b. Seasonal variation of total carotenoids content in the tissues of male and female golden noble scallops Chlamys nobilis. Aquaculture 518:734796. doi: 10.1016/j.aquaculture.2019.734796.
  • Tan, K., H. Ma, S. Li, and H. Zheng. 2020e. Bivalves as future source of sustainable natural omega-3 polyunsaturated fatty acids. Food Chemistry 311:125907. doi: 10.1016/j.foodchem.2019.125907.
  • Tan, K. S., and J. Ransangan. 2017. Feeding behaviour of green mussels, Perna viridis in Marudu Bay, Malaysia. Aquaculture Research 48 (3):1216–31. doi: 10.1111/are.12963.
  • Tan, K. S., H. K. Zhang, S. K. Li, H. Y. Ma, and H. P. Zheng. 2021c. Lipid nutritional quality of marine and freshwater bivalves and their aquaculture potential. Critical Reviews in Food Science and Nutrition:1–25. doi: 10.1080/10408398.2021.1909531.
  • Tan, K., H. Zhang, L.-S. Lim, H. Ma, S. Li, and H. Zheng. 2020a. Roles of carotenoids in invertebrate immunology. Frontiers in Immunology 10:03041. doi: 10.3389/fimmu.2019.03041.
  • Tan, K., H. Zhang, L. Lim, and H. Zheng. 2020d. Selection breeding program of Nan’ao Golden Scallop Chlamys nobilis with higher nutritional values and less susceptible to stress. Aquaculture 517:734769. doi: 10.1016/j.aquaculture.2019.734769.
  • Tan, K., H. Zhang, H. Ma, S. Li, and H. Zheng. 2021b. Effects of tidal zones and seasons on nutritional properties of commercially importance gastropods. Estuarine Coastal and Shelf Science 254:107289. doi: 10.1016/j.ecss.2021.107289.
  • Tan, K. S., H. K. Zhang, and H. P. Zheng. 2020c. Selective breeding of edible bivalves and its implication of global climate change. Reviews in Aquaculture 12 (4):2559–72. doi: 10.1111/raq.12458.
  • Tan, K. S., H. K. Zhang, and H. P. Zheng. 2022. Climate change and n-3 LC-PUFA availability. Progress in Lipid Research 86:101161. doi: 10.1016/j.plipres.2022.101161.
  • Tan, K. S., and H. P. Zheng. 2022. Endogenous LC-PUFA biosynthesis capability in commercially important mollusks. Critical Reviews in Food Science and Nutrition 62 (10):2836–44. doi: 10.1080/10408398.2020.1860896.
  • Tee, E.-S., and C. Y. Lee. 1992. Carotenoids and retinoids in human nutrition. Critical Reviews in Food Science and Nutrition 31 (1–2):103–63. doi: 10.1080/10408399209527563.
  • The Alpha-Tocopherol, Beta Carotene Cancer Prevention Study Group. 1994. The effect of vitamin E and beta carotene on the incidence of lung cancer and other cancers in male smokers. The New England Journal of Medicine 330:1029–35.
  • Tode, C., Y. Yamano, and M. Ito. 2001. Carotenoids and related polyenes. Part 7. Total synthesis of crassostreaxanthin B applying the stereoselective rearrangement of tetrasubstituted epoxides. Journal of the Chemical Society, Perkin Transactions 1 24:3338–45.
  • Venugopal, V. 2009. Marine products for healthcare: functional and bioactive nutraceuticals from the ocean, 527. Boca Raton, FL: CRC Press.
  • Vijayalakshmi, A., M. S. Chakravarty, M. R. Avuthu, et al. 2018. Isolation and quantification of carotenoids in lobster species off Visakhapatnam coast. Andhra Pradesh. Indian Journal of Geo Marine Sciences 47 (7):1435–40.
  • Wade, N. M., S. Cheers, N. Bourne, S. Irvin, D. Blyth, and B. D. Glencross. 2015b. Dietary astaxanthin levels affect colour, growth, carotenoid digestibility and the accumulation of specific carotenoid esters in the giant tiger shrimp, Penaeus monodon. Aquaculture Research 48 (2):395–406. doi: 10.1111/are.12888.
  • Wade, N. M., J. Gabaudan, and B. D. Glencross. 2015a. A review of carotenoid utilisation and function in crustacean aquaculture. Reviews in Aquaculture 9 (2):141–56. doi: 10.1111/raq.12109.
  • Wang, S., J. Lv, L. Zhang, J. Dou, Y. Sun, X. Li, X. Fu, H. Dou, J. Mao, X. Hu, et al. 2015. MethylRAD: A simple and scalable method for genome-wide DNA methylation profiling using methylation-dependent restriction enzymes. Open Biology 5 (11):150130. doi: 10.1098/rsob.150130.
  • Wei, H., M. Chen, Z. Deng, Y. Li, Z. Ma, Y. Wang. 2019c. Differences in total carotenoid content in tissues of the pearl oyster Pinctada fucata with regard to cuticle shell color. The Israeli Journal of Agriculture- Bamidgeh 71.
  • Wei, X., N. Chen, B. Tang, X. Luo, W. You, and C. Ke. 2019a. Untargeted metabolomic analysis of the carotenoid-based orange coloration in Haliotis gigantean using TOF-MS. Scientific Reports 9 (1):14545. doi: 10.1038/s41598-019-51117-9.
  • Wei, X., W. Zeng, B. Tang, J. He, N. Chen, X. Luo, D. Feng, W. You, and C. Ke. 2019b. Comparative analysis of the predominant carotenoids and chemical components in the common and orange- muscle mutant of Haliotis gigantean. Aquaculture Research 50 (10):2938–50. doi: 10.1111/are.14248.
  • Yabuzaki, J. 2017. Carotenoids database: Structures, chemical fingerprints and distribution among organisms. Database 2017 (1). doi: 10.1093/database/bax004.
  • Yanar, Y., M. Celik, and M. Yanar. 2004. Seasonal changes in total carotenoid contents of wild marine shrimps (Penaeus semisulcatus and Metapenaeus monoceros) inhabiting the eastern Mediterranean. Food Chemistry 88 (2):267–9. doi: 10.1016/j.foodchem.2004.01.037.
  • Yaqoob, Z., M. S. Arshad, M. Imran, H. Munir, T. B. Qaisrani, W. Khalid, Z. Asghar, and H. A. R. Suleria. 2022. Mechanistic role of astaxathin derived from shrimp against certain metabolic disorders. Food Science & Nutrition 10 (1):12–20. doi: 10.1002/fsn3.2623.
  • Yesilayer, N. 2020. Comparison of flesh colour assessment methods for wild brown trout (Salmo trutta macrostigma), farmed rainbow trout (Oncorhynchus mykiss) and farmed atlantic salmon (Salmo salar). Pakistan Journal of Zoology 52 (3):1007–14.
  • Yeum, K.-J., G. Aldini, R. M. Russell, N. I. Krinsky. 2009. Antioxidant/pro-oxidant actions of carotenoids, carotenoids. In Natrition and health, eds. G. Britton, S. Liaaen-Jonsen, and H. Pfander, vol. 5, ch. 12, 235–68. Birkhäuser Basel, Basel, Boston, Berlin.
  • Yi, X., F. Zhang, W. Xu, J. Li, W. Zhang, and K. Mai. 2014. Effects of dietary lipid content on growth, body composition and pigmentation of large yellow croaker Larimichthys croceus. Aquaculture 434:355–61. doi: 10.1016/j.aquaculture.2014.08.035.
  • Ytrestøyl, T., G. Coral-Hinostroza, B. Hatlen, D. H. F. Robb, and B. Bjerkeng. 2004. Carotenoid and lipid content in muscle of Atlantic salmon, Salmo salar, transferred to seawater as 0+ or 1+ smolts. Comparative Biochemistry and Physiology Part B: Biochemistry and Molecular Biology 138 (1):29–40. doi: 10.1016/j.cbpc.2004.01.011.
  • Zhang, Y., J. Lin, G. Yan, W. Jin, W. Chen, J. Sun, L. Yang, M. Huang, and Z. Hong. 2019. Determination of fucoxanthinol in rat plasma by liquid chromatography-tandem mass spectrometry. Journal of Pharmaceutical and Biomedical Analysis 164:155–63. doi: 10.1016/j.jpba.2018.10.033.
  • Zhang, Y., L. Zhang, J. Sun, J. Qiu, X. Hu, J. Hu, and Z. Bao. 2014. Proteomic analysis identifies proteins related to carotenoid accumulation in Yesso scallop (Patinopecten yessoensis). Food Chemistry 147:111–6. doi: 10.1016/j.foodchem.2013.09.078.
  • Zhao, C., and P. D. Nabity. 2017. Phylloxerids share ancestral carotenoid biosynthesis genes of fungal origin with aphids and adelgids. Plos One 12 (10):e0185484. doi: 10.1371/journal.pone.0185484.
  • Zheng, H. P., H. L. Liu, and X. Q. Chen. 2015. A new variety “Nan’ao Golden Scallop” of the noble scallop Chlamys nobilis (Bivalve: Pectinidae) (Ed by the National Aquaculture Technique Extension Central Station of China, 123-132), in: Guide for Extending Aquatic Varieties, Chinese Agricultural Press.
  • Zheng, H., H. Liu, W. Liu, Z. Sun, and Q. Zhang. 2012. Changes of total carotenoid and lipid content in scallop tissues of Chlamys nobilis (Bivalve: Pectinidae) during gonad maturation. Aquaculture 342–343:7–12. doi: 10.1016/j.aquaculture.2012.01.037.
  • Zou, X., J. Gao, Y. Zheng, et al. 2014. Zeaxanthin induces Nrf2-mediated phase II enzymes in protection of cell death. Cell Death and Disease 5:218.

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