The Impact of repeated cycles of freezing, thawing, and refreezing on nutritional value and lipid-protein oxidation in broiler breast meat

Authors

  • Bestoon Hassan Ahmed Department of Animal Resources , College of Agricultural Engineering Sciences, Salahaddin University- Erbil, Erbil, Kurdistan Region, Iraq
  • Naska Abdulqadir Mohammed Department of Food Science and Quality Control, College of Agricultural Engineering Sciences, University of Sulaimani, Sulaymaniyah, Iraq.

DOI:

https://doi.org/10.21271/ZJPAS.37.3.11

Keywords:

Broiler meat, frozen, nutritional value, lipid oxidation, refrozn

Abstract

The objective of this study was to assess the impact of freezing and refreezing temperatures, as well as the duration of frozen storage, on fatty acid and amino acid profiles, and the oxidative stability of lipids and proteins in broiler breast meat. Forty broiler breast muscle samples were divided into two primary groups. The first group was subdivided into three equal sections, each subjected to freezing durations of 0, 30, 60, and 90 days. The second group underwent freezing cycles for 30, 60, and 90 days, followed by overnight thawing at 4 °C. Refreezing intervals of 0, 30, 60, and 90 days were then implemented before the meat quality assessment. The results showed a significant reduction (P < 0.05) in essential amino acids, such as lysine, threonine, and valine, in broiler breast meat samples. These reductions were observed after 30, 60, and 90 days of freezing in the first group and following two or three cycles of freezing and refreezing in the second group. Non-essential amino acids such as tyrosine and arginine showed no significant reduction during all refreezing intervals. Fatty acids exhibited a significant decline (P < 0.05), including saturated and monounsaturated fatty acids, but linoleic acid remained stable across all storage durations.Lipid and protein oxidation levels increased steadily over time, particularly during prolonged storage and repeated freeze-thaw cycles. These findings indicate that extended freezing and refreezing negatively affect the amino acid and fatty acid profiles, contributing to a decline in broiler meat quality.

References

Abdullahi Bida, A. (2019) ‘Storage and Cooling Effects on Levels of Protein Carbohydrates, Fats, Minerals and Microbes in Guinea Fowl (<i>Numida meleagris</i>) Meat Sold in Kaduna Metropolis, Nigeria’, Advances in Biochemistry, 7(1), p. 10. Available at: https://doi.org/10.11648/J.AB.20190701.13.

Addis, M. (2015) ‘Major Causes Of Meat Spoilage and Preservation Techniques: A Review’, 41. Available at: www.iiste.org (Accessed: 31 January 2025).

Ahmed, B.H. and Marzany, N.A. (2022) ‘Microbial counts and eating quality of breast broilers meat subjected to different freezing and refreezing storage periods’, Tikrit Journal for Agricultural Sciences, 22(3), pp. 53–59. Available at: https://doi.org/10.25130/tjas.22.3.6.

Alam, A. et al. (2024) ‘Enhancing the qualitative attributes of meat through processing and preservation techniques- A review’, Meat Research, 4(3), pp. 1–6. Available at: https://doi.org/10.55002/MR.4.3.92.

Ali, S. et al. (2015) ‘Effect of multiple freeze–thaw cycles on the quality of chicken breast meat’, Food Chemistry, 173, pp. 808–814. Available at: https://doi.org/10.1016/J.FOODCHEM.2014.09.095.

Añazco, C., Ojeda, P.G. and Guerrero-Wyss, M. (2023) ‘Common Beans as a Source of Amino Acids and Cofactors for Collagen Biosynthesis’, Nutrients, 15(21), p. 4561. Available at: https://doi.org/10.3390/NU15214561.

Aroeira, C.N. et al. (2017) ‘Effect of freezing prior to aging on myoglobin redox forms and CIE color of beef from Nellore and Aberdeen Angus cattle’, Meat science, 125, pp. 16–21. Available at: https://doi.org/10.1016/J.MEATSCI.2016.11.010.

Bertolín, J.R., Joy, M. and Blanco, M. (2019) ‘Malondialdehyde determination in raw and processed meat products by UPLC-DAD and UPLC-FLD’, Food Chemistry, 298, p. 125009. Available at: https://doi.org/10.1016/J.FOODCHEM.2019.125009.

Biesalski, H.K. (2005) ‘Meat as a component of a healthy diet – are there any risks or benefits if meat is avoided in the diet?’, Meat Science, 70(3), pp. 509–524. Available at: https://doi.org/10.1016/J.MEATSCI.2004.07.017.

Bist, R.B. et al. (2024) ‘Sustainable poultry farming practices: a critical review of current strategies and future prospects’, Poultry Science, 103(12), p. 104295. Available at: https://doi.org/10.1016/J.PSJ.2024.104295.

Chan, J.T.Y., Omana, D.A. and Betti, M. (2011) ‘Effect of ultimate pH and freezing on the biochemical properties of proteins in turkey breast meat’, Food Chemistry, 127(1), pp. 109–117. Available at: https://doi.org/10.1016/J.FOODCHEM.2010.12.095.

Chen, Q. (2024) ‘Protein Structure Prediction’, Association Analysis Techniques and Applications in Bioinformatics, pp. 205–235. Available at: https://doi.org/10.1007/978-981-99-8251-6_7.

Chumngoen, W. and Tan, F.J. (2015) ‘Relationships between Descriptive Sensory Attributes and Physicochemical Analysis of Broiler and Taiwan Native Chicken Breast Meat’, Asian-Australasian journal of animal sciences, 28(7), pp. 1028–1037. Available at: https://doi.org/10.5713/AJAS.14.0275.

Coria-Hernández, J. et al. (2020) ‘Changes in myoglobin content in pork Longissimus thoracis muscle during freezing storage’, Revista mexicana de ciencias pecuarias, 11(3), pp. 651–668. Available at: https://doi.org/10.22319/RMCP.V11I3.5214.

Dietrich, R.B. et al. (2025) ‘Role of protein and lipid oxidation in hardening of high-protein bars during storage’, Journal of Food Science, 90(1). Available at: https://doi.org/10.1111/1750-3841.17663.

Domínguez, R. et al. (2021) ‘Protein Oxidation in Muscle Foods: A Comprehensive Review’, Antioxidants, 11(1), p. 60. Available at: https://doi.org/10.3390/ANTIOX11010060.

Estévez, M. (2011) ‘Protein carbonyls in meat systems: A review’, Meat Science, 89(3), pp. 259–279. Available at: https://doi.org/10.1016/J.MEATSCI.2011.04.025.

Feng, J. et al. (2008) ‘Estimating relative carbonyl levels in muscle microstructures by fluorescence imaging’, Analytical and bioanalytical chemistry, 391(7), p. 2591. Available at: https://doi.org/10.1007/S00216-008-2187-5.

Fereidoon, S. and Ying, Z. (2010) ‘Lipid oxidation and improving the oxidative stability’, Chemical Society Reviews, 39(11), pp. 4067–4079. Available at: https://doi.org/10.1039/B922183M.

Gerber, N. (no date) ‘THE ROLE OF MEAT IN HUMAN NUTRITION FOR THE SUPPLY WITH NUTRIENTS, PARTICULARLY FUNCTIONAL LONG-CHAIN n-3 FATTY ACIDS’.

Ghaly, Abdel E, Dave, D. and Ghaly, A E (2011) ‘Meat Spoilage Mechanisms and Preservation Techniques: A Critical Review’, American Journal of Agricultural and Biological Sciences, 6(4), pp. 486–510.

Hassan Ahmed, B. and Abdulqadir Marzany, N. (2022) ‘Physical and chemical properties of breast chicken meat subjected to different freezing and refreezing storage periods’, International Journal of Special Education, 37(3), pp. 17539–17549. Available at: http://www.internationaljournalofspecialeducation.com/submission/index.php/ijse/article/view/2119 (Accessed: 31 January 2025).

Im, C. et al. (2024) ‘Assessing Individual Muscle Characteristics to Enhance Frozen-Thawed Meat Quality’, Food Science of Animal Resources, 44(4), p. 758. Available at: https://doi.org/10.5851/KOSFA.2024.E39.

Jiang, Q. et al. (2019) ‘Changes in protein properties and tissue histology of tuna meat as affected by salting and subsequent freezing’, Food Chemistry, 271, pp. 550–560. Available at: https://doi.org/10.1016/J.FOODCHEM.2018.07.219.

Kaczmarek, A. and Muzolf‐panek, M. (2021) ‘Prediction of Thiol Group Changes in Minced Raw and Cooked Chicken Meat with Plant Extracts—Kinetic and Neural Network Approaches’, Animals 2021, Vol. 11, Page 1647, 11(6), p. 1647. Available at: https://doi.org/10.3390/ANI11061647.

Kaushik, S.J. and Seiliez, I. (2010) ‘Protein and amino acid nutrition and metabolism in fish: current knowledge and future needs’, Aquaculture Research, 41(3), pp. 322–332. Available at: https://doi.org/10.1111/J.1365-2109.2009.02174.X.

Lee, S. et al. (2024) ‘Freezing-induced denaturation of myofibrillar proteins in frozen meat’, Critical Reviews in Food Science and Nutrition, 64(5), pp. 1385–1402. Available at: https://doi.org/10.1080/10408398.2022.2116557.

Leygonie, C., Britz, T.J. and Hoffman, L.C. (2012) ‘Impact of freezing and thawing on the quality of meat: Review’, Meat Science, 91(2), pp. 93–98. Available at: https://doi.org/10.1016/J.MEATSCI.2012.01.013.

Lund, M.N. et al. (2011) ‘Protein oxidation in muscle foods: A review’, Molecular Nutrition & Food Research, 55(1), pp. 83–95. Available at: https://doi.org/10.1002/MNFR.201000453.

Majewska, D. et al. (2009) ‘Physicochemical characteristics, proximate analysis and mineral composition of ostrich meat as influenced by muscle’, Food Chemistry, 117(2), pp. 207–211. Available at: https://doi.org/10.1016/J.FOODCHEM.2009.03.100.

Mancini, R.A. and Hunt, M.C. (2005) ‘Current research in meat color’, Meat Science, 71(1), pp. 100–121. Available at: https://doi.org/10.1016/J.MEATSCI.2005.03.003.

Mohammed, H.H.H. et al. (2021) ‘Effect of frozen and refrozen storage of beef and chicken meats on inoculated microorganisms and meat quality’, Meat science, 175. Available at: https://doi.org/10.1016/J.MEATSCI.2021.108453.

Moughan, P.J. and Lim, W.X.J. (2024) ‘Digestible indispensable amino acid score (DIAAS): 10 years on’, Frontiers in Nutrition, 11, p. 1389719. Available at: https://doi.org/10.3389/FNUT.2024.1389719/BIBTEX.

Muzolf-Panek, M. and Kaczmarek, A. (2021) ‘Chemometric Analysis of Fatty Acid Composition of Raw Chicken, Beef, and Pork Meat with Plant Extract Addition during Refrigerated Storage’, Molecules 2021, Vol. 26, Page 4952, 26(16), p. 4952. Available at: https://doi.org/10.3390/MOLECULES26164952.

Nagy, P. (2013) ‘Kinetics and Mechanisms of Thiol–Disulfide Exchange Covering Direct Substitution and Thiol Oxidation-Mediated Pathways’, Antioxidants & Redox Signaling, 18(13), p. 1623. Available at: https://doi.org/10.1089/ARS.2012.4973.

Nkansah, M.A., Agyei, E.A. and Opoku, F. (2021) ‘Mineral and proximate composition of the meat and shell of three snail species’, Heliyon, 7(10). Available at: https://doi.org/10.1016/J.HELIYON.2021.E08149.

Pan, N. et al. (2021) ‘Effect of freeze-thaw cycles on the quality of quick-frozen pork patty with different fat content by consumer assessment and instrument-based detection’, Meat Science, 172, p. 108313. Available at: https://doi.org/10.1016/J.MEATSCI.2020.108313.

Park, S.Y. et al. (2007) ‘Evaluation of lipid oxidation and oxidative products as affected by pork meat cut, packaging method, and storage time during frozen storage (-10 degrees C)’, Journal of food science, 72(2). Available at: https://doi.org/10.1111/J.1750-3841.2006.00265.X.

Ragucci, S., Landi, N. and Di Maro, A. (2024) ‘Myoglobin as a molecular biomarker for meat authentication and traceability’, Food Chemistry, 458, p. 140326. Available at: https://doi.org/10.1016/J.FOODCHEM.2024.140326.

Rahman, M.M. et al. (2023) ‘Techniques of meat preservation- A review’, Meat Research, 3(3), pp. 2790–1971. Available at: https://doi.org/10.55002/MR.3.3.55.

Rinwi, T.G. et al. (2024) ‘Effects of different isochoric freeze-thaw cycles on the physicochemical quality attributes of chicken breast meat’, Food Bioscience, 59, p. 103641. Available at: https://doi.org/10.1016/J.FBIO.2024.103641.

Al -Sabagh, E.S. et al. (2016) ‘Effect of Freezing and Frozen Storage on Amino Acid Profile and Fatty Acid Pattern in Imported and Local Meat’, Alexandria Journal of Veterinary Sciences, 49(1), pp. 113–121. Available at: https://doi.org/10.5455/ajvs.209080.

SAS (2001) Statistical Analysis System (2001) User’s Guide: Statistics, Version 8.2. SAS Institute, NC, USA.

Silva, F.A.P. et al. (2018) ‘Protein and lipid oxidations in jerky chicken and consequences on sensory quality’, LWT, 97, pp. 341–348. Available at: https://doi.org/10.1016/J.LWT.2018.07.022.

Soncu, E D and Soncu, Eda Demirok (2020) ‘Protein oxidation and subsequent changes in chicken breast and thigh meats during long-term frozen storage’, Agricultural and Food Science, 29(5), pp. 505-514–505–514. Available at: https://doi.org/10.23986/AFSCI.97338.

Soyer, A. et al. (2010) ‘Effects of freezing temperature and duration of frozen storage on lipid and protein oxidation in chicken meat’, Food Chemistry, 120(4), pp. 1025–1030. Available at: https://doi.org/10.1016/J.FOODCHEM.2009.11.042.

Suman, S.P. and Joseph, P. (2013) ‘Myoglobin chemistry and meat color’, Annual review of food science and technology, 4(1), pp. 79–99. Available at: https://doi.org/10.1146/ANNUREV-FOOD-030212-182623.

Sun, Q. et al. (2019) ‘Effects of ultrasound-assisted freezing at different power levels on the structure and thermal stability of common carp (Cyprinus carpio) proteins’, Ultrasonics Sonochemistry, 54, pp. 311–320. Available at: https://doi.org/10.1016/J.ULTSONCH.2019.01.026.

Utrera, M. and Estévez, M. (2013) ‘Oxidative damage to poultry, pork, and beef during frozen storage through the analysis of novel protein oxidation markers’, Journal of agricultural and food chemistry, 61(33), pp. 7987–7993. Available at: https://doi.org/10.1021/JF402220Q.

Utrera, M., Morcuende, D. and Estévez, M. (2014) ‘Temperature of frozen storage affects the nature and consequences of protein oxidation in beef patties’, Meat Science, 96(3), pp. 1250–1257. Available at: https://doi.org/10.1016/J.MEATSCI.2013.10.032.

Viveros, A. et al. (2002) ‘Effects of microbial phytase supplementation on mineral utilization and serum enzyme activities in broiler chicks fed different levels of phosphorus’, Poultry Science, 81(8), pp. 1172–1183. Available at: https://doi.org/10.1093/PS/81.8.1172.

Wang, D ; et al. (2022) ‘The Changes Occurring in Proteins during Processing and Storage of Fermented Meat Products and Their Regulation by Lactic Acid Bacteria’, Foods 2022, Vol. 11, Page 2427, 11(16), p. 2427. Available at: https://doi.org/10.3390/FOODS11162427.

Wang, Z. et al. (2018) ‘The effect of repeated freeze-thaw cycles on the meat quality of rabbit’, World Rabbit Science, 26(2), pp. 165–177. Available at: https://doi.org/10.4995/WRS.2018.8616.

Wu, X. et al. (2021) ‘Effect of Freeze-Thaw Cycles on the Oxidation of Protein and Fat and Its Relationship with the Formation of Heterocyclic Aromatic Amines and Advanced Glycation End Products in Raw Meat’, Molecules 2021, Vol. 26, Page 1264, 26(5), p. 1264. Available at: https://doi.org/10.3390/MOLECULES26051264.

Zhan, X. et al. (2018) ‘Improving the quality and safety of frozen muscle foods by emerging freezing technologies: A review’, Critical Reviews in Food Science and Nutrition, 58(17), pp. 2925–2938. Available at: https://doi.org/10.1080/10408398.2017.1345854.

Zhang, K. et al. (2024) ‘Recent advances in the color of aquatic products: Evaluation methods, discoloration mechanism, and protection technologies’, Food Chemistry, 434, p. 137495. Available at: https://doi.org/10.1016/J.FOODCHEM.2023.137495.

Zhang, Y. et al. (2023) ‘Physicochemical and structural changes of myofibrillar proteins in muscle foods during thawing: Occurrence, consequences, evidence, and implications’, Comprehensive Reviews in Food Science and Food Safety, 22(4), pp. 3444–3477. Available at: https://doi.org/10.1111/1541-4337.13194.

Published

2025-06-30

How to Cite

Bestoon Hassan Ahmed, & Naska Abdulqadir Mohammed. (2025). The Impact of repeated cycles of freezing, thawing, and refreezing on nutritional value and lipid-protein oxidation in broiler breast meat. Zanco Journal of Pure and Applied Sciences, 37(3), 127–142. https://doi.org/10.21271/ZJPAS.37.3.11

Issue

Section

Agricultural and Environmental Researches