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The alternative approach of low temperature-long time cooking on bovine semitendinosus meat quality

  • Ismail, Ishamri (Division of Applied Life Science (BK21+), Gyeongsang National University) ;
  • Hwang, Young-Hwa (Institute of Agriculture & Life Science, Gyeongsang National University) ;
  • Bakhsh, Allah (Division of Applied Life Science (BK21+), Gyeongsang National University) ;
  • Joo, Seon-Tea (Division of Applied Life Science (BK21+), Gyeongsang National University)
  • 투고 : 2018.05.04
  • 심사 : 2018.09.05
  • 발행 : 2019.02.01

초록

Objective: This study aimed to elucidate whether innovative sous vide treatment has a significant influence on the beef semitendinosus muscle as compared to common sous vide treatment and traditional cooking. Methods: The innovative sous vide treatments were cooked at $45^{\circ}C$ and $65^{\circ}C$ for 6 h (SV45-65), common sous vide treatment at $45^{\circ}C$ and $65^{\circ}C$ for 3 h (SV45 and SV65) and traditional cooking at $75^{\circ}C$ for 30 min (CON75). Water loss and cooking loss, as well as the physical properties (color and shear force) and chemical properties (protein and collagen solubility) of the treated meat, were investigated. Results: The results obtained indicated that the innovative sous vide with double thermal treatment (SV45-65) and cooked with air presence (CON75) resulted to lower $a^*$ and higher $b^*$ values, respectively. The water loss and cooking loss increased when temperature increased from $45^{\circ}C$ to $65^{\circ}C$, and lower water loss was recorded in SV45 and CON75. These samples presented higher water content and revealed strong correlation to protein solubility. Warner-Bratzler shear force (SF) analysis showed the marked interaction between cooking temperature and time. Sample cooked at a high temperature (CON75) and a long period (SV45-65) showed a significantly lower value of SF than sample SV65 (p<0.05). Interestingly, there was no difference in SF values between SV45-65 and CON75. Conclusion: The innovative sous vide treatment with double thermal effect appears an attractive cooking method as compared to common sous vide and traditional cooking method, as it has a potential for improving tenderness values of cooked beef semitendinosus muscle.

키워드

참고문헌

  1. Hocquette JF, Ellies-Oury MP, Lherm M, et al. Current situation and future prospects for beef production in Europe- a review. Asian-Australas J Anim Sci 2018;31:1017-35. https://doi.org/10.5713/ajas.18.0196
  2. Tornberg E. Effects of heat on meat proteins - Implications on structure and quality of meat products. Meat Sci 2005;70: 493-508. https://doi.org/10.1016/j.meatsci.2004.11.021
  3. Bendall JR, Restall DJ. The cooking of single myofibres, small myofibre bundles and muscle strips from beef M. psoas and M. sternomandibularis muscles at varying heating rates and temperatures. Meat Sci 1983;8:93-117. https://doi.org/10.1016/0309-1740(83)90009-8
  4. Schellekens M. New research issues in sous-vide cooking. Trends Food Sci Technol 1996;7:256-62. https://doi.org/10.1016/0924-2244(96)10027-3
  5. Beilken SL, Bouton PE, Harris PV. Some Effects on the mechanical properties of meat produced by cooking at temperatures between $50^{\circ}$ and $60^{\circ}C$. J Food Sci 1986;51:791-6. https://doi.org/10.1111/j.1365-2621.1986.tb13934.x
  6. Bramblett VD, Hostetler RL, Vail GE, Draudt HN. Qualities of beef as affected by cooking at very low temperatures for long periods of time. Food Technol 1959;13:707-711.
  7. Bramblett VD, Vail GE. Further studies on qualities of beef as affected by cooking at very low temperatures for long periods. Food Technol 1964;18:245-7.
  8. Laakkonen E, Sherbon JW, Wellington GH. Low-temperature, long-time heating of bovine muscle. 3. Collagenolytic activity. J Food Sci 1970;35:181-4. https://doi.org/10.1111/j.1365-2621.1970.tb12133.x
  9. Machlik SM, Draudt HN. Effect of heating time and temperature on shear of beef semitendinosus muscle. J Food Sci 1963; 28:711-8. https://doi.org/10.1111/j.1365-2621.1963.tb01678.x
  10. Christensen L, Bertram HC, Aaslyng MD, Christensen M. Protein denaturation and water-protein interactions as affected by low temperature long time treatment of porcine longissimus dorsi. Meat Sci 2011;88:718-22. https://doi.org/10.1016/j.meatsci.2011.03.002
  11. Christensen L, Ertbjerg P, Aaslyng MD, Christensen M. Effect of prolonged heat treatment from $48^{\circ}C$ to $63^{\circ}C$ on toughness, cooking loss and color of pork. Meat Sci 2011;88:280-5. https://doi.org/10.1016/j.meatsci.2010.12.035
  12. Christensen L, Gunvig A, Torngren MA, et al. Sensory characteristics of meat cooked for prolonged times at low temperature. Meat Sci 2012;90:485-9. https://doi.org/10.1016/j.meatsci.2011.09.012
  13. Roldan M, Antequera T, Martin A, Mayoral AI, Ruiz J. Effect of different temperature-time combinations on physicochemical, microbiological, textural and structural features of sous-vide cooked lamb loins. Meat Sci 2013;93:572-8. https://doi.org/10.1016/j.meatsci.2012.11.014
  14. Baldwin DE. Sous vide cooking: a review. Int J Gastron Food Sci 2012;1:15-30. https://doi.org/10.1016/j.ijgfs.2011.11.002
  15. James BJ, Yang SW. Effect of cooking method on the toughness of bovine M. semitendinosus. Int J Food Eng 2012;8(2):1-18.
  16. Vaudagna SR, Sanchez G, Neira MS, et al. Sous vide cooked beef muscles: effects of low temperature-long time (LT-LT) treatments on their quality characteristics and storage stability. Int J Food Sci Technol 2002;37:425-41. https://doi.org/10.1046/j.1365-2621.2002.00581.x
  17. Garcia-Segovia P, Andres-Bello A, Martinez-Monzo J. Effect of cooking method on mechanical properties, color and structure of beef muscle (M. pectoralis). J Food Eng 2007;80:813-21. https://doi.org/10.1016/j.jfoodeng.2006.07.010
  18. Botinestean C, Keenan DF, Kerry JP, Hamill RM. The effect of thermal treatments including sous-vide, blast freezing and their combinations on beef tenderness of M. semitendinosus steaks targeted at elderly consumers. LWT 2016;74:154-9. https://doi.org/10.1016/j.lwt.2016.07.026
  19. Rinaldi M, Dall’Asta C, Paciulli M, et al. A novel time/temperature approach to sous vide cooking of beef muscle. Food Bioproc Technol 2014;7:2969-77. https://doi.org/10.1007/s11947-014-1268-z
  20. Christensen L, Ertbjerg P, Loje H, et al. Relationship between meat toughness and properties of connective tissue from cows and young bulls heat treated at low temperatures for prolonged times. Meat Sci 2013;93:787-95. https://doi.org/10.1016/j.meatsci.2012.12.001
  21. Sanchez Del Pulgar J, Gazquez A, Ruiz-Carrascal J. Physico-chemical, textural and structural characteristics of sous-vide cooked pork cheeks as affected by vacuum, cooking temperature, and cooking time. Meat Sci 2012;90:828-35. https://doi.org/10.1016/j.meatsci.2011.11.024
  22. Zheng Y, Wang S, Yan P. The meat quality, muscle fiber characteristics and fatty acid profile in Jinjiang and F1 Simmental x Jinjiang yellow cattle. Asian-Australas J Anim Sci 2018;31: 301-8. https://doi.org/10.5713/ajas.17.0319
  23. Bouton PE, Harris PV. Changes in the Tenderness of Meat Cooked at $50-65^{\circ}C$. J Food Sci 1981;46:475-8. https://doi.org/10.1111/j.1365-2621.1981.tb04889.x
  24. Bejerholm C, Aaslyng MD. Cooking of meat. Encyclopedia of meat sciences. Philadelphia, PV, USA: Elsevier Science and Technology; 2004. pp. 343-9.
  25. AOAC. Official methods of analysis. 16th ed. Association of Official Analytical Chemists, Arlington, VA, USA: AOAC International; 2002.
  26. AMSA. Research guidelines for cookery, sensory evaluation and instrumental tenderness measurements of fresh meat. Chicago, IL, USA: American Meat Science Association in cooperation with National Live Stock and Meat Board; 1995. p. 8.
  27. Joo ST, Kauffman RG, Kim BC, Park GB. The relationship of sarcoplasmic and myofibrillar protein solubility to colour and water-holding capacity in porcine longissimus muscle. Meat Sci 1999;52:291-7. https://doi.org/10.1016/S0309-1740(99)00005-4
  28. ISO-3496. Meat and meat products - determination of hydroxyproline content [Internet]. c1994 [cited 2018 Feb 1]. Available from: http://www.iso.org/ISO/catalogue
  29. Young OA, West J. Meat colour. In: Hui YH, Nip W-K, Rogers RW, Young OA, editors. Meat Science and Applications. New York, NY, USA: Marcel Dekker Inc; 2001. p. 36-69.
  30. Florek M, Junkuszew A, Gregula-Kania M, et al. Effect of sex, muscle, and processing temperature on heme iron content in lamb meat. Anim Sci Pap Rep 2016;34:257-68.
  31. Martens H, Stabursvik E, Martens M. Texture and colour changes in meat during cooking related to thermal denaturation of muscle proteins. J Texture Stud 1982;13:291-309. https://doi.org/10.1111/j.1745-4603.1982.tb00885.x
  32. Hunt MC, Sorheim O, Slinde E. Color and heat denaturation of myoglobin forms in ground beef. J Food Sci 1999;64:847-51. https://doi.org/10.1111/j.1365-2621.1999.tb15925.x
  33. Utama DT, Baek KH, Jeong HS, et al. Effects of cooking method and final core-temperature on cooking loss, lipid oxidation, nucleotide-related compounds and aroma volatiles of Hanwoo brisket. Asian-Australas J Anim Sci 2018;31:293-300. https://doi.org/10.5713/ajas.17.0217
  34. Khan MI, Lee HJ, Kim H-J, et al. Marination and physicochemical characteristics of vacuum-aged duck breast meat. Asian-Australas J Anim Sci 2016;29:1639-45. https://doi.org/10.5713/ajas.15.1053
  35. Hamm R. Changes of muscle proteins during the heating of meat. In: Hoyem T, Kvale O, editors. Physical, chemical and biological changes in food caused by thermal processing. London, UK: Applied Science Publishing; 1977. p. 101-34.
  36. Davey CL, Gilbert KV. Temperature-dependent cooking toughness in beef. J Sci Food Agric 1974;25:931-8. https://doi.org/10.1002/jsfa.2740250808
  37. Mudalal S, Babini E, Cavani C, Petracci, M. Quantity and functionality of protein fractions in chicken breast fillets affected by white striping. Poult Sci 2014;93:2108-16. https://doi.org/10.3382/ps.2014-03911
  38. Miyaguchi Y, Hayashi Y, Sakamoto T. Physicochemical properties of the thermal gel of water-washed meat in the presence of the more soluble fraction of porcine sarcoplasmic protein. Anim Sci J 2007;78:77-84. https://doi.org/10.1111/j.1740-0929.2006.00408.x
  39. Laakkonen E. Factors affecting tenderness during heating of meat. In: Chichester CO, Irak EM, Stewart GF, editors. Advances in food research. New York, USA: Academic Press; 1973. p. 257-323.
  40. Palka K. Changes in intramuscular connective tissue and collagen solubility of bovine m.semitendinosus during retorting. Meat Sci 1999;53:189-94. https://doi.org/10.1016/S0309-1740(99)00047-9

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