Journal of Applied Science and Engineering

Published by Tamkang University Press

1.30

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1.60

CiteScore

Xicai Zhang 1,2,3,4,5, Wen bo Huang 1,2,3,4, and Jing Xie This email address is being protected from spambots. You need JavaScript enabled to view it. 1,2,3,4

1College of Food Science Technology, Shanghai Ocean University, Shanghai 201306, China
2Shanghai Engineering Research Center of Aquatic Product Processing and Preservation, Shanghai 201306, China
3Shanghai Professional Technology Service Platform on Cold Chain Equipment Performance and Energy Saving Evaluation, Shanghai 201306, China
4National Experimental Teaching Demonstration Center for Food Science and Engineering Shanghai Ocean University, Shanghai 201306, China
5Jingchu University of Technology, Jing men, 448000, China


 

Received: November 5, 2019
Accepted: July 24, 2020
Publication Date: December 1, 2020

 Copyright The Author(s). This is an open access article distributed under the terms of the Creative Commons Attribution License (CC BY 4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are cited.


Download Citation: ||https://doi.org/10.6180/jase.202012_23(4).0016  


ABSTRACT


The rapid detection of the freshness of grouper fillets was obtained by establishing a quality index method (QIM) scheme and near-infrared analysis model. Between the QI score and storage time showed a linear relationship (QI = 1.179 × t –1.157, R2 = 0.98) which indicates that shelf life of grouper fillets is 12 days under 4 ℃. Partial least squares (PLS) analysis showed the mean squared error between predict days and measure days was almost 1 day (MSE=0.984). Correlation analysis between QI value and freshness indices found that the QI score has a high correlation with total volatile base nitrogen (TVB-N). Partial least squares (PLS), principal component regression (PCR) and multiple linear regression (MLR) methods were used to establish near-infrared spectroscopy (NIRs) prediction models for TVB-N, various spectral pretreatment methods such as the first derivative (1st), vector normalization (SNV), and multi-scatter correction (MSC) have been adopted. The results showed that SNV combined with PLS had the best acceptable fitting accuracy and predictive ability, the coefficients of prediction (Rp) was 0.968 and root mean square error of prediction (RMSEP) was 1.381 for TVB-N. The total results reveal that the feasibility of using NIRS and QIM scheme to detect freshness in grouper fillets.


Keywords: Grouper (Epinephelus coioides); freshness evaluation; rapid detection; quality index method; near-infrared spectroscopy


REFERENCES


 

  1. [1]Kirtil, E.; Kilercioglu, M.; Oztop, M.H. Modified Atmosphere Packaging of Foods. In Reference Module in Food Science, Elsevier: 2016; https://doi.org/10.1016/B978-0-08-100596-5.03218-2.
  2. [2]Hassoun, A.; Karoui, R. (2015). Front-face fluorescence spectroscopy coupled with chemometric tools for monitoring fish freshness stored under different refrigerated conditions. Food Control 54, 240-249.
  3. [3]Sharifian, S.; Alizadeh, E.; Mortazavi, M.S.; Shahriari, M.M. (2014). Effects of refrigerated storage on the microstructure and quality of Grouper (Epinephelus coioides) fillets. Journal of Food Science and Technology 51, 929-935.
  4. [4]Iacumin, L., Tirloni, E., Manzano, M., & Comi, G (2017). Shelf-Life Evaluation of Sliced Cold-Smoked Rainbow Trout (Oncorhynchus mykiss) Under Vacuum (Pv) and Modified Atmosphere Packaging (MAP). Turkish Journal of Fisheries and Aquatic Sciences 17, 1279-1285.
  5. [5]Ocaño-Higuera, V.M.; Maeda-Martínez, A.N.; Marquez-Ríos, E.; Canizales-Rodríguez, D.F.; Castillo-Yáñez, F.J.; Ruíz-Bustos, E.; Graciano-Verdugo, A.Z.; Plascencia-Jatomea, M. (2011). Freshness assessment of ray fish stored in ice by biochemical, chemical and physical methods. Food Chemistry 125, 49-54.
  6. [6]Sriket, C. (2014). Proteases in fish and shellfish: role on muscle softening and prevention. International Food Research Journal 21, 433-445.
  7. [7]Ritter, D.O.; Lanzarin, M.; Novaes, S.F.; Monteiro, M.L.G.; Almeida Filho, E.S.; Mársico, E.T.; Franco, R.M.; Conte-Junior, C.A.; Freitas, M.Q. (2016). Quality Index Method (QIM) for gutted ice-stored hybrid tambatinga (Colossoma macropomum×Piaractus brachypomum) and study of shelf life. LWT - Food Science and Technology 67, 55-61.
  8. [8]Li, X.; Chen, Y.; Cai, L.; Xu, Y.; Yi, S.; Zhu, W.; Mi, H.; Li, J.; Lin, H. (2017). Freshness assessment of turbot (Scophthalmus maximus) by Quality Index Method (QIM), biochemical, and proteomic methods. LWT - Food Science and Technology 78, 172-180.
  9. [9]Baixas-Nogueras, S.; Bover-Cid, S.; Veciana-Nogués, T.; Nunes, M.L.; Vidal-Carou, M.C. (2010). Development of a Quality Index Method to Evaluate Freshness in Mediterranean Hake (Merluccius merluccius). Journal of Food Science 68, 1067-1071.
  10. [10]Porep, J.U.; Kammerer, D.R.; Carle, R. (2015). On-line application of near infrared (NIR) spectroscopy in food production. Trends in Food Science & Technology 46, 211-230.
  11. [11]Nicolaï, B.M.; Beullens, K.; Bobelyn, E.; Peirs, A.; Saeys, W.; Theron, K.I.; Lammertyn, J. (2007). Nondestructive measurement of fruit and vegetable quality by means of NIR spectroscopy: A review. Postharvest Biology and Technology 46, 99-118.
  12. [12]Reis, M.M.; Martínez, E.; Saitua, E.; Rodríguez, R.; Pérez, I.; Olabarrieta, I. (2017). Non-invasive differentiation between fresh and frozen/thawed tuna fillets using near infrared spectroscopy (Vis-NIRS). LWT - Food Science and Technology 78, 129-137.
  13. [13]Choi, C.; Lee, D.; Kim, Y.; Kim, B.; Kim, J. (2017). Prediction of beef freshness attributes using reflectance spectroscopy. Engineering in Agriculture, Environment and Food 10, 243-248.
  14. [14]Abbey, L.D.; Glover-Amengor, M.; Atikpo, M.O.; Howell, N.K. (2017). Proximate and biochemical characterization of burrito (Bachydeuterus auritus) and flying gurnard (Dactylopterus volitans). Food Science & Nutrition 5, 369-373.
  15. [15]Hyldig, G.; Dmb, G.P. (2005). Quality index method--an objective tool for determination of sensory quality. Journal of Aquatic Food Product Technology 13, 71-80.
  16. [16]ISO (1993). Sensory analysis -General guidance for the selection, training and monitoring of assessors.
  17. [17]China, S. (2016). National food safety standards on the determination of volatile base nitrogen in food (GB5009228-2016).
  18. [18]Salih, A.M.; Smith, D.M.; Price, J.F.; Dawson, L.E. (1987). Modified extraction 2-thiobarbituric acid method for measuring lipid oxidation in poultry. Poultry Science 66, 1483-1488.
  19. [19]Borges, A.; Conte-Junior, C.A.; Franco, R.M.; Mársico, E.T.; Freitas, M.Q. (2014). Quality Index Method (QIM) for the hybrid tambacu ( Colossoma macropomum × Piaractus mesopotamicus ) and the correlation among its quality parameters. LWT - Food Science and Technology 56, 432-439.
  20. [20]Bonilla, A.C.; Sveinsdottir, K.; Martinsdottir, E. (2007). Development of Quality Index Method (QIM) scheme for fresh cod (Gadus morhua) fillets and application in shelf life study. Food Control 18, 352-358.
  21. [21]Antóniov, S.; Anar, O.; Pedrom, D.; Carlosm, C.; Josép, A.; Marial, N. (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. LWT - Food Science and Technology 42, 424-432.
  22. [22]De Koning, A.J. (2002). Quantitative quality tests for South African fish meal: an investigation into the validity of a number of quality indices. International Journal of Food Properties 5, 495-507.
  23. [23]Mbarki, R.; Sadok, S.; Barkallah, I. (2009). Quality changes of the Mediterranean horse mackerel (Trachurus mediterraneus) during chilled storage: The effect of low-dose gamma irradiation. Radiation Physics and Chemistry 78, 288-292.
  24. [24]Regulation, C. (1996). Laying down common marketing standards for certain fishery products.
  25. [25]Tomac, A.; Mascheroni, R.H.; Yeannes, M.I. (2014). Modeling total volatile basic nitrogen production as a dose function in gamma irradiated refrigerated squid rings. LWT - Food Science and Technology 56, 533-536.
  26. [26]Aubourg, S.P. (2010). Review: Interaction of malondialdehyde with biological molecules--new trends about reactivity and significance. International Journal of Food Science & Technology 28, 323-335.
  27. [27]Chytiri, S.; Chouliara, I.; Savvaidis, I.N.; Kontominas, M.G. (2004). Microbiological, chemical and sensory assessment of iced whole and filleted aquacultured rainbow trout. Food Microbiology 21, 157-165.
  28. [28]Ravelhofer-Rotheneder, K.; Rotheneder, R. (2005). New EC regulations on food hygiene - Microbiological criteria for foodstuffs. Fleischwirtschaft -Frankfurt- 85, 107-108.
  29. [29]Kanner, J.; Harel, S. (2009). Desferrioxamine as an electron donor. Inhibition of membranal lipid peroxidation initiated by H2O2-activated metmyoglobin and other peroxidizing systems. Free Radical Research Communications 3, 309-317.
  30. [30]Shi, C.; Cui, J.; Luo, Y.; Zhou, Z. (2014). Effect of lightly salt and sucrose on rigor mortis changes in silver carp (Hypophthalmichthys molitrix) stored at 4°C. International Journal of Food Science & Technology 49, 160-167.
  31. [31]Zhou, J.; Wu, X.; Chen, Z.; You, J.; Xiong, S. (2019). Evaluation of freshness in freshwater fish based on near infrared reflectance spectroscopy and chemometrics. LWT - Food Science and Technology 106, 145-150.


    



 

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