DOI QR코드

DOI QR Code

Possible Muscle Fiber Characteristics in the Selection for Improvement in Porcine Lean Meat Production and Quality

  • Kim, J.M. (Division of Biotechnology, College of Life Sciences and Biotechnology, Korea University) ;
  • Lee, Y.J. (Division of Biotechnology, College of Life Sciences and Biotechnology, Korea University) ;
  • Choi, Y.M. (Division of Food Bioscience and Technology, College of Life Sciences and Biotechnology, Korea University) ;
  • Kim, B.C. (Division of Food Bioscience and Technology, College of Life Sciences and Biotechnology, Korea University) ;
  • Yoo, B.H. (Sangwon Pig Development Company) ;
  • Hong, K.C. (Division of Biotechnology, College of Life Sciences and Biotechnology, Korea University)
  • 투고 : 2008.01.21
  • 심사 : 2008.05.10
  • 발행 : 2008.10.01

초록

The aim of this study was directed at exploring the possible use of muscle fiber characteristics as new selection traits for improving both porcine lean meat production and quality. A total of 174 (114 Yorkshire, 30 Landrace, and 30 Meishan) pigs were used for this study, and lean meat production ability was estimated by backfat thickness and loin eye area. The Longissimus dorsi muscle was taken in order to measure meat quality and muscle fiber characteristics. Due to the high correlations between total muscle fiber number and most of the performance traits, all pigs were classified into three groups (low, intermediate, or high) by total muscle fiber number using cluster analysis. The high group had the highest loin eye area (p<0.001). The meat quality traits were within normal ranges as reddish pink, firm, and nonexudative (RFN) pork, but the groups classified as intermediate and high had relatively large drip loss percentages (p<0.05), produced more than twice the amount of pale, soft, and exudative (PSE) pork as compared to the low group. The group with a high total muscle fiber number was further classified, based on type 2b fiber percentage, into low or high groups by cluster analysis. The results showed that the low type 2b fiber group had good loin eye area (p<0.05), small drip loss (p<0.05), and did not produce PSE pork. For these reasons, a high total muscle fiber number, with a low percentage of type 2b fibers, may be suitable in selecting for improvements in both lean meat production and meat quality.

키워드

참고문헌

  1. Brocks, L., R. E. Klont, W. Buist, K. de Greef, M. Tieman and B. Engel. 2000. The effects of selection of pigs on growth rate vs. leanness on histochemical characteristics of different muscles. J. Anim Sci. 78:1247-1254. https://doi.org/10.2527/2000.7851247x
  2. Brooke, M. H. and K. K. Kaiser. 1970. Muscle fiber types: How many and what kind? Arch. Neurol. 23:369-379. https://doi.org/10.1001/archneur.1970.00480280083010
  3. Cameron, N. D. 1990. Genetic and phenotypic parameters for carcass traits, meat and eating quality traits in pigs. Livest. Prod. Sci. 26:119-135. https://doi.org/10.1016/0301-6226(90)90061-A
  4. Essen-Gustavsson, B., A. Karlsson, K. Lundstrom and A. C. Enfalt. 1994. Intramuscular fat and muscle fibre lipid contents in halothane-gene-free pigs fed high or low protein diets and its relation to meat quality. Meat Sci. 38:269-277. https://doi.org/10.1016/0309-1740(94)90116-3
  5. Fiedler, I., G. Dietl, C. Rehfeldt, J. Wegner and K. Ender. 2004. Muscle fibre traits as additional selection criteria for muscle growth and meat quality in pigs-results of a simulated selection. J. Anim. Breed. Genet. 121:331-344. https://doi.org/10.1111/j.1439-0388.2004.00466.x
  6. Fiedler, I., K. Ender, M. Wicke, S. Maak, G. V. Lengerken and W. Meyer. 1999. Structural and functional characteristics of muscle fibres in pigs with different malignant hyperthermia susceptibility (MHS) and different meat quality. Meat Sci. 53: 9-15. https://doi.org/10.1016/S0309-1740(99)00030-3
  7. Fiedler, I., K. Ender, M. Wicke and G. von Lengerken. 1993. Relationships between micro-structure of muscle tissue and stress susceptibility in Landrace pigs (halothane sensitivity). Arch. Anim. Breed. 36:525-538.
  8. Fiedler, I., K. Nurnberg, T. Hardge, G. Nurnberg, K. Ender. 2003. Phenotypic variations of muscle fibre and intramuscular fat traits in Longissimus muscle of F2 population DurocxBerlin miniature pig and relationships to meat quality. Meat Sci. 63: 131-139. https://doi.org/10.1016/S0309-1740(02)00075-X
  9. Honikel, K. O. 1987. How to measure the water-holding capacity of meat? Recommendation of standardized methods. Evaluation and control of meat quality in pigs (Ed. P. V. Tarrant, G. Eikelenboom and G. Monin), pp. 129-142. Dordrecht, The Netherlands: Martinus Nijhoff.
  10. Jin, H. J., B. Y. Park, J. C. Park, I. H. Hwang, S. S. Lee, S. H. Yeon, C. D. Kim, C. Y. Cho, Y. K. Kim, K. S. Min, S. T. Feng, Z. D. Li, C. K. Park and C. I. Kim. 2006. The effects of stress related genes on carcass traits and meat quality in pigs. Asian-Aust. J. Anim. Sci. 19:280-285.
  11. Joo, S. T., R. G. Kauffman, B. C. Kim and G. B. Park. 1999. The relationship of sarcoplasmic and myofibrillar protein solubility to colour and water-holding capacity in porcine longissimus muscle. Meat Sci. 52:291-297. https://doi.org/10.1016/S0309-1740(99)00005-4
  12. Karlsson, A., A. C. Enfalt, B. Essen-Gustavsson, K. Lundstrom, L. Rydhmer and S. Stern. 1993. Muscle histochemical and biochemical properties in relation to meat quality during selection for increased lean tissue growth rate in pigs. J. Anim Sci. 71:930-938. https://doi.org/10.2527/1993.714930x
  13. Karlsson, A. H., R. E. Klont and X. Fernandez. 1999. Skeletal muscle fibres as factors for pork quality. Livest. Prod. Sci. 60: 255-269. https://doi.org/10.1016/S0301-6226(99)00098-6
  14. Kim, Y. Y., J. R. Piao, J. Z. Tian, B. G. Kim, Y. I. Choi and In K. Han. 2004. Effects of sex and market weight on performance, carcass characteristics and pork quality of market hogs. Asian- Aust. J. Anim. Sci. 17:1452-1458. https://doi.org/10.5713/ajas.2004.1452
  15. Larzul, C., L. Lefaucheur, P. Ecolan, J. Gogue, A. Talmant, P. Sellier, P. Le Roy and G. Monin. 1997. Phenotypic and genetic parameters for longissimus muscle fiber characteristics in relation to growth, carcass, and meat quality traits in large white pigs. J. Anim Sci. 75:3126-3137. https://doi.org/10.2527/1997.75123126x
  16. Lawrie, R. A. 1998. Meat Science. In factors reflected in specialized muscle function and constitution. pp. 72-79. Woodhead Publishing Ltd., Abington Cambridge.
  17. Lengerken, G., S. Maak, M. Wicke, I. Fiedler and K. Ender. 1994. Suitability of structural and functional traits of skeletal muscle for genetic improvement of meat quality in pigs. Arch. Tierz. 37:133-143.
  18. Lengerken, G., M. Wicke and S. Maak. 1997. Stress susceptibility and meat quality-situation and prospects in animal breeding and research. Arch. Anim. Breed. 40 (Suppl):163-171.
  19. Linke, H. 1972. Histological studies on exudative, pale pork. Fleischwirtsch 52:493-507.
  20. Maltin, C. A., C. C. Warkup, K. R. Matthews, C. M. Grant, A. D. Porter and M. I. Delday. 1997. Pig muscle fibre characteristics as a source of variation in eating quality. Meat Science 47: 237-248. https://doi.org/10.1016/S0309-1740(97)00055-7
  21. Morel, P. C. H., B. J. Camden, R. W. Purchas and J. A. M. Janz. 2006. Evaluation of three pork quality prediction tools across a 48 hours postmortem period. Asian-Aust. J. Anim. Sci. 19:266- 272.
  22. Nelson, T. E., J. S. S. Schochet. 1982. Malignant hyperthermia: a disease of specific myofiber type? Can. Anaesth. Soc. J. 29: 163-167. https://doi.org/10.1007/BF03007997
  23. Rehfeldt, C., I. Fiedler, G. Dietl and K. Ender. 2000. Myogenesis and postnatal skeletal muscle cell growth as influenced by selection. Livest. Produc. Sci. 66:177-188. https://doi.org/10.1016/S0301-6226(00)00225-6
  24. Rehfeldt, C., N. C. Stickland, I. IFiedler and J. Wegner. 1999. Environmental and genetic factors as sources of variation in skeletal muscle fibre number. Basic Appl. Myol. 9:235-253.
  25. Ryu, Y. C. and,B. C. Kim. 2005. The relationship between muscle fiber characteristics, postmortem metabolic rate, and meat quality of pig longissimus dorsi muscle. Meat Sci. 14:71351- 357.
  26. Ryu, Y. C. and B. C. Kim. 2006. Comparison of histochemical characteristics in various pork groups categorized by postmortem metabolic rate and pork quality. J. Anim Sci. 84: 894-901. https://doi.org/10.2527/2006.844894x
  27. Ryu, Y. C., M. S. Rhee and B. C. Kim. 2004. Estimation of correlation coefficients between histological parameters and carcass traits of pig longissimus dorsi muscle. Asian-Aust. J. Anim. Sci. 17:428-433. https://doi.org/10.5713/ajas.2004.428

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