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Articles

Preliminary multi analytical approach to address geographic traceability at the intraspecific level in Scombridae family

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Pages 260-279 | Received 21 May 2019, Accepted 29 Jan 2020, Published online: 26 Mar 2020

References

  • Loureiro ML, Umberger WJ. A choice experiment model for beef: what US consumer responses tell us about relative preferences for food safety, country of origin labeling and traceability. Food Pol. 2007;32(4):496–514.
  • Di Bella G, Lo Turco V, Potortì AG, et al. Geographical discrimination of Italian honey by multi-element analysis with a chemometric approach. J Food Compos Anal. 2015;44:25–35.
  • Vadalà R, Mottese AF, Bua GD, et al. Statistical analysis of mineral concentration for the geographic identification of garlic samples from Sicily (Italy), Tunisia and Spain. Foods. 2016;5(1):20.
  • Commission Regulation (EC) No 2065/2001 of 22 October 2001 laying down detailed rules for the application of Council Regulation (EC) No 104/2000 as regards informing consumers about fishery and aquaculture products.
  • Regulation (EC) No 178/2002 of the European Parliament and of the Council of 28 January 2002 laying down the general principles and requirements of food law, establishing the European Food Safety Authority and laying down procedures in matters of food safety.
  • Regulation (EU) No 1379/2013 of the European Parliament and of the Council of 11 December 2013 on the common organization of the markets in fishery and aquaculture products, amending Council Regulations (EC) No 1184/2006 and (EC) No 1224/2009 and repealing Council Regulation (EC) No 104/2000.
  • UNI EN ISO 22005:2008 traceability in the feed and food chain – general principles and basic requirements for system design and implementation.
  • Kim H, Kumar KS, Hwang SY, et al. Utility of stable isotope and cytochrome oxidase I gene sequencing analyses in inferring origin and authentication of hairtail fish and shrimp. J Agric Food Chem. 2015;63(22):5548–5556.
  • Potts T, Brennan R, Pita C, et al. Sustainable seafood and eco-labeling. Research report: the marine stewardship council, UK consumers, and the UK fishing industry. Oban: Scottish Association for Marine Science (SAMS); 2011. (SAMS Report).
  • FAO. The state of world fisheries and aquaculture. Rome (Italy): Food and Agriculture Organization of the United Nations, Fisheries and Aquaculture Department; 2010.
  • Reilly A. Overview of food fraud in the fisheries sector. Rome (Italy): Food and Agriculture Organization of the United Nations; 2018. (FAO Fisheries and Aquaculture Circular No. 1165).
  • Botti S, Giuffra E. Oligonucleotide indexing of DNA barcodes: identification of tuna and other Scombridae species in food products. BMC Biotechnol. 2010;10:60.
  • Collette, B.B. Family Scombridae Rafinesque 1815 – mackerels, tunas and bonitos. Annotated checklist of fishes, 19. Berkeley, CA: California Academy of Sciences; 2003.
  • Velasco A, Sánchez A, Martínez I, et al. Development of a real-time PCR method for the identification of Atlantic mackerel (Scomber scombrus). Food Chem. 2013;141(3):2006–2010.
  • Tuna 2020 Traceability Declaration. Stopping illegal tuna from coming to market. The Ocean conference UN headquarters. New York 5 June 2017. Available from: https://www.reforum.org/agenda/2017/06/tuna-2020-traceability-declaration-stopping-illegal–tuna-from-coming-to-market/.
  • Teletchea F. Molecular identification methods of fish species: reassessment and possible applications. Rev Fish Biol Fisher. 2009;19:265–293.
  • Armstrong SG, Leach DN, Wyllie SG. The use of HPLC protein profiles in fish species identification. Food Chem. 1992;44(2):147–155.
  • Gallardo JM, Sotelo CG, Pineiro C, et al. Use of capillary zone electrophoresis for fish species identification. Differentiation of flatfish species. J Agric Food Chem. 1995;43(5):1238–1244.
  • Xiccato G, Trocino A, Tulli F, et al. Prediction of chemical composition and origin identification of European sea bass (Dicentrarchus labrax) by near infrared reflectance spectroscopy (NIRS). Food Chem. 2004;86(2):275–281.
  • Busetto ML, Moretti VM, Moreno-Rojas JM, et al. Authentication of farmed and wild turbot (Psetta maxima) by fatty acid and isotopic analyses combined with chemometrics. J Agric Food Chem. 2008;56:2742–2750.
  • Ward RD, Hanner R, Hebert PDN. The campaign to DNA barcode all fishes, FISH-BOL. J Fish Biol. 2009;74:329–356.
  • Dawnay N, Ogden R, McEwing R, et al. Validation of the barcoding gene COI for use in forensic genetic species identification. Forensic Sci Int. 2007;173(1):1–6.
  • Becker S, Hanner R, Steinke D. Five years of FISH-BOL: brief status report. Mitochondrial DNA. 2011;22(Suppl. 1):3–9.
  • Galimberti A, De Mattia F, Losa A, et al. DNA barcoding as a new tool for food traceability. Food Res Int. 2013;50(1):55–63.
  • Viñas J, Tudela SA. Validated methodology for genetic identification of tuna species (genus Thunnus). PLoS One. 2009;4(10):7606.
  • CEN/TS 17303 ‘Foodstuffs – DNA barcoding of fish and fish products using defined mitochondrial cytochrome b and cytochrome c oxidase I gene segments’. National Standards Authority of Ireland; 2019.
  • Rooker JR, Alvarado Bremer JR, Block BA, et al. Life history and stock structure of Atlantic bluefin tuna (Thunnus thynnus). Rev Fish Sci. 2007;15(4):265–310.
  • Camin F, Bontempo L, Perini M, et al. Stable isotope ratio analysis for assessing the authenticity of food of animal origin. Compr Rev Food Sci Food Saf. 2016;15(5):868–877.
  • Fry B, Sherr EBC. Measurements as indicators of carbon flow in marine and freshwater ecosystems. J Mar Sci.1984;27:1347.
  • Lajtha K, Michener RH. Stable isotopes in ecology and environmental science. Oxford (UK): Blackwell Scientific Publications; 1994.
  • Hobson KA. Tracing origins and migration of wildlife using stable isotopes: a review. Oecologia. 1999;120:314–326.
  • DeNiro MJ, Epstein S. Influence of diet on the distribution of carbon isotopes in animals. Geochim Cosmochim Acta. 1978;42(5):495–506.
  • Peterson BJ, Fry B. Stable isotopes in ecosystem studies. Annu Rev Ecol Evol Syst. 1987;18(1):293–320.
  • Minagawa M, Wada E. Stepwise enrichment of 15N along food chains: further evidence and the relation between δ15N and animal age. Geochim Cosmochim Acta. 1984;48(5):1135–1140.
  • Hobson KA, Welch HE. Determination of trophic relationships within a high Arctic marine food web using δ13C and δ15N analysis. Mar Ecol Prog Ser. 1992,84:9–18.
  • Parrish CC, Nichols PD, Pethybridge H, et al. Direct determination of fatty acids in fish tissues: quantifying top predator trophic connections. Oecologia. 2015;177(1):85–95.
  • Fortibuoni T, Noventa S, Rampazzo F, et al. Evidence of butyltin biomagnification along the northern Adriatic food-web (Mediterranean Sea) elucidated by stable isotope ratios. Environ Sci Technol. 2013;47(7):3370–3377.
  • Logan JM, Jardine TD, Miller TJ, et al. Lipid corrections in carbon and nitrogen stable isotope analyses: comparison of chemical extraction and modeling methods. J Anim Ecol. 2008;77(4):838–846.
  • Logan-Sprenger HM, Heigenhauser GJ, Jones GL, et al. The effect of dehydration on muscle metabolism and time trial performance during prolonged cycling in males. Physiol Rep. 2015;3(8):e12483.
  • Estrada JA, Lutcavage M, Thorrold SR. Diet and trophic position of Atlantic bluefin tuna (Thunnus thynnus) inferred from stable carbon and nitrogen isotope analysis. Mar Biol. 2005;147:37–45.
  • Madigan DJ, Litvin SY, Popp BN, et al. Tissue turnover rates and isotopic trophic discrimination factors in the endothermic teleost, Pacific bluefin tuna (Thunnus orientalis). PLoS One. 2012;7(11):49220.
  • Goñi N, Logan J, Arrizabalaga H, et al. Variability of albacore (Thunnus alalunga) diet in the Northeast Atlantic and Mediterranean Sea. Mar Biol. 2011;158(5):1057–1073.
  • Laiz-Carrión R, Quintanilla JM, Torres AP, et al. Hydrographic patterns conditioning variable trophic pathways and early life dynamics of bullet tuna Auxis rochei larvae in the Balearic Sea. Mar Ecol Prog Ser. 2013;475:203–212.
  • Scholefield AM, Schuller KA. Cell proliferation and long chain polyunsaturated fatty acid metabolism in a cell line from southern bluefin tuna (Thunnus maccoyii). Lipids. 2014;49:703–714.
  • Topic Popovic N, Kozacinski L, Strunjak-Perovic I, et al. Fatty acid and proximate composition of bluefin tuna (Thunnus thynnus) muscle with regard to plasma lipids. Aquacult Res. 2012;43:722–729.
  • De Battisti C, Marciano S, Magnabosco C, et al. Pyrosequencing as a tool for rapid fish species identification and commercial fraud detection. J Agric Food Chem. 2013;62(1):198–205.
  • Teletchea F. Molecular identification methods of fish species: reassessment and possible applications. Rev Fish Biol Fisher. 2009;9(3):265.
  • Comi G, Iacumin L, Rantsiou K, et al. Molecular methods for the differentiation of species used in production of cod-fish can detect commercial frauds. Food Control. 2005;16(1):37–42.
  • Rasmussen RS, Morrissey MT. DNA-based methods for the identification of commercial fish and seafood species. Compr Rev Food Sci Food Saf. 2008;7:280–295.
  • Espeñeira M, Gonzalez-Lavin N, Vieites JM, et al. Development of a method for the genetic identification of flatfish species on the basis of mitochondrial DNA sequences. J Agric Food Chem. 2008;56:8954–8961.
  • Kartavtsev YP, Sharina SN, Goto T, et al. Cytochrome oxidase 1 gene sequence analysis in six flatfish species (Teleostei, Pleuronectidae) of Far East Russia with inferences in phylogeny and taxonomy. Mitochondrial DNA. 2008;19(6):479–489.
  • Kochzius M. Trends in fishery genetics. In: Beamish RJ, Rothschild BJ, editors. The future of fisheries science in North America. Amsterdam: Springer Netherlands. 2009; p. 453–493.
  • Aquino LMG, Tango JM, Canoy, RJC, et al. DNA barcoding of fishes of Laguna de Bay, Philippines. Mitochondrial DNA. 2011;22(4):143–153.
  • Ribeiro ADO, Caires RA, Mariguela, TC, et al. DNA barcodes identify marine fishes of Sao Paulo State, Brazil. Mol Ecol Resour. 2012;12(6):1012–1020.
  • Ardura A, Planes S, Garcia-Vazquez E. Applications of DNA barcoding to fish landings: authentication and diversity assessment. ZooKeys. 2013;365:49–65.
  • Chow S, Kishino H. Phylogenetic relationships between tuna species of the genus Thunnus (Scombridae: Teleostei): inconsistent implications from morphology, nuclear and mitochondrial genomes. J Mol Evol. 1995;41:741–748.
  • Chow S, Nakagawa T, Suzuki N, et al. Phylogenetic relationships among Thunnus species inferred from rDNA ITS1 sequence. J Fish Biol. 2006;68:24–35.
  • Savolainen V, Cowan RS, Vogler AP, et al. Towards writing the encyclopedia of life: an introduction to DNA barcoding. Philos Trans R Soc B. 2005;360:1805–1811.
  • Austerlitz F, David O, Schaeffer B, et al. DNA barcode analysis: a comparison of phylogenetic and statistical classification methods. BMC Bioinformatics. 2009;10(14):S10.
  • Waugh J. DNA barcoding in animal species: progress, potential and pitfalls. BioEssays. 2007;29:188–197.
  • Focken U, Becker K. Metabolic fractionation of stable carbon isotopes: implications of different proximate compositions for studies of the aquatic food webs using δ13C data. Oecologia. 1998;115(3):337–343.
  • Matthews B, Mazumder A. Temporal variation in body composition (C:N) helps explain seasonal patterns of zooplankton δ13C. Freshwater Biol. 2005;50(3):502–515.
  • McConnaughey T, McRoy CP. Food-web structure and the fractionation of carbon isotopes in the Bering Sea. Mar Biol. 1979;53(3):257–262.
  • Fry B, Silva SR, Kendall C, et al. Oxygen isotope corrections for online δ34S analysis. Rapid Commun Mass Spectrom. 2002;16(9):854–858.
  • Kiljunen M, Grey J, Sinisalo T, et al. A revised model for lipid-normalizing δ13C values from aquatic organisms, with implications for isotope mixing models. J Appl Ecol. 2006;43(6):1213–1222.
  • Sweeting CJ, Polunin NVC, Jennings S. Effects of chemical lipid extraction and arithmetic lipid correction on stable isotope ratios of fish tissues. Rapid Commun Mass Spectrom. 2006;20(4):595–601.
  • Post DM, Layman CA, Arrington DA, et al. Getting to the fat of the matter: models, methods and assumptions for dealing with lipids in stable isotope analyses. Oecologia. 2007;152(1):179–189.
  • Pinnegar JK, Polunin NVC. Differential fractionation of δ13C and δ15N among fish tissues: implications for the study of trophic interactions. Funct Ecol. 1999;13(2):225–231.
  • Darnaude AM. Fish ecology and terrestrial carbon use in coastal areas: Implications for marine fish production. J Anim Ecol. 2005;74:864−876.
  • López-López L, Preciado I, Villamor B, et al. Is juvenile anchovy a feeding resource for the demersal community in the Bay of Biscay? On the availability of pelagic prey to demersal predators. ICES J Mar Sci. 2012;69(8):1394–1402.
  • Pettine M, Patrolecco L, Camusso M et al. Transport of carbon and nitrogen to the northern Adriatic Sea by the Po River. Estuar Coast Shelf Sci. 1998;46(1):127–142.
  • Graham SA, Chamberlain CP, Yue Y, et al. Stable isotope records of Cenozoic climate and topography, Tibetan plateau and Tarim basin. Am J Sci. 2005;305(2):101–118.
  • Vander Zanden MJ, Shuter BJ, Lester N, et al. Patterns of food chain length in lakes: a stable isotope study. Am Nat. 1999;154(4):406–416.
  • Peng S, Chen C, Shi Z et al. Amino acid and fatty acid composition of the muscle tissue of yellowfin tuna (Thunnus albacares) and bigeye tuna (Thunnus obesus). J Food Nutr Res. 2013;1(4):42–45.
  • Özogul Y, Özogul F. Fatty acid profiles of commercially important fish species from the Mediterranean, Aegean and Black Seas. Food Chem. 2007;100(4):1634–1638.
  • Khitouni IK, Mihoubi NB, Bouain A, et al. Seasonal variations in proximate and fatty acid composition of golden grey mullet Liza aurata (R, 1810) from the Tunisian coast. Int J Agric Pol Res. 2014;2(7):273–280.
  • Selmiet S, Mbarki R, Sadok S. Seasonal change of lipid and fatty acid composition of little tuna Euthynnus alletteratus-by-products. Nutr Health. 2008;19(3):189–194.
  • Zlatanos S, Laskaridis K. Seasonal variation in the fatty acid composition of three Mediterranean fish-sardine (Sardina pilchardus), anchovy (Engraulis encrasicholus) and picarel (Spicara smaris). Food Chem. 2007;103:725–728.
  • Tiku PE, Gracey AY, Macartney AI, et al. Cold-induced expression of Δ9-desaturase in carp by transcriptional and posttranslational mechanism. Science. 1996;271:815–818.
  • Garaffo M, Vassallo-Agius R, Nengas Y, et al. Fatty acids profile, atherogenic (IA) and thrombogenic (IT) health lipid indices, of raw roe of blue fin tuna (Thunnus thynnus L.) and their salted product “Bottarga”. Food Nutr Sci. 2011;2:736–743.
  • Perhar G, Arhonditsis GB, Brett MT. Modelling the role of highly unsaturated fatty acids in planktonic food web processes: a mechanistic approach. Environ Rev. 2012;20:155–172.
  • Cermeño P, Tudela S, Quílez-Badia G, et al. New data on bluefin tuna migratory behavior in the western and central Mediterranean Sea. Coll Vol Sci Pap ICCAT. 2012;68(1):151–162.

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