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Manipulating meat quality and composition

Published online by Cambridge University Press:  28 February 2007

J. D. Wood*
Affiliation:
Division of Food Animal Science, School of Veterinary Science, University of Bristol, Langford, Bristol BS40 5DU, UK
M. Enser
Affiliation:
Division of Food Animal Science, School of Veterinary Science, University of Bristol, Langford, Bristol BS40 5DU, UK
A. V. Fisher
Affiliation:
Division of Food Animal Science, School of Veterinary Science, University of Bristol, Langford, Bristol BS40 5DU, UK
G. R. Nute
Affiliation:
Division of Food Animal Science, School of Veterinary Science, University of Bristol, Langford, Bristol BS40 5DU, UK
R. I. Richardson
Affiliation:
Division of Food Animal Science, School of Veterinary Science, University of Bristol, Langford, Bristol BS40 5DU, UK
P. R. Sheard
Affiliation:
Division of Food Animal Science, School of Veterinary Science, University of Bristol, Langford, Bristol BS40 5DU, UK
*
*Corresponding author: Dr J. D. Wood, fax +44 (0)117 928 9324, email jeff.wood@bris.ac.uk
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Abstract

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Meat quality describes the attractiveness of meat to consumers. The present paper focuses on two major aspects of meat quality, tenderness and flavour. Both aspects of quality can be influenced by nutrition, principally through its effects on the amount and type of fat in meat. In several countries, high levels of intramuscular fat (marbling fat), i.e. above 30 g/kg muscle weight in longissimus, are deemed necessary for optimum tenderness, although poor relationships between fat content and tenderness have generally been found in European studies, where fat levels are often very low, e.g. below 10 g/kg in UK pigs. Muscle lipid may be a marker for red oxidative (type 1) muscle fibres which are found at higher concentrations in tender muscles and carcasses. Nutritional treatment can be used to manipulate the fatty acid content of muscle to improve nutritional balance, i.e. increase the polyunsaturated (PUFA) : saturated fatty acid value and reduce the n−6 : n−3 PUFA value. Increasing PUFA levels may also change flavour because of their greater susceptibility to oxidative breakdown and the generation of abnormal volatile compounds during cooking. This situation particularly applies to the n−3 PUFA which are the most unsaturated meat lipids. In pigs, a concentration of 3 mg α-linolenic acid (18 : 3)/100 mg in muscle and fat tissue fatty acids can easily be achieved by including whole linseed in the diet. This level has led to abnormal odours and flavours in some studies, but not in others. In cattle and sheep, feeding whole linseed raised 18 : 3 concentrations in muscle fatty acids from about 0.7 mg/100 mg to > 1 mg/100 mg. As with pigs, this diet also increased levels of long-chain n−3 PUFA formed from 18 : 3, including eicosapentaenoic acid (20 : 5). Although this increase led to greater oxidative breakdown of lipids during storage and the generation of large quantities of lipid-derived volatile compounds during cooking, there were no deleterious effects on odour or flavour. When 18 : 3 levels are raised in lamb and beef because of grass feeding, the intensity of the flavours increases in comparison with grain-fed animals which consume and deposit relatively more linoleic acid (18 : 2). In ruminants, very high levels of 18 : 2 produced by feeding protected oil supplements cause the cooked beef to be described as oily, bland or pork-like.

Type
Animal Nutrition and Metabolism Group Symposium on ‘Improving meat production for future needs’
Copyright
Copyright © The Nutrition Society 1999

References

Blanchard, PJ, Chadwick, JP, Warkup, CC, Ellis, M & Deans, GA (1995) The influence of rate of lean and fat tissue development on pork eating quality Animal Science 60, 512.Google Scholar
Cameron, ND & Enser, M (1991) Fatty acid composition of lipid in longissimus dorsi muscle of Duroc and British Landrace pigs and its relationship with eating quality. Meat Science 29, 295307.CrossRefGoogle ScholarPubMed
Department of Health (1994) Nutritional Aspects of Cardiovascular Disease. Report on Health and Social Subjects no. 46. London: H.M. Stationery Office.Google Scholar
Dikeman, ME (1987) Fat reduction in animals and the effects on palatability and consumer acceptance of meat products. Proceedings of the 40th Reciprocal Meat Conference, pp. 93103. Chicago, ILNational Livestock and Meat Board.Google Scholar
Dransfield, E, Nute, GR, Mottram, DS, Rowan, TG & Lawrence, TLJ (1985) Pork quality from pigs fed on low glucosinate rapeseed meal: influence of level in the diet, sex and ultimate pH. Journal of the Science of Food and Agriculture 36, 546556.CrossRefGoogle Scholar
Elmore, JS, Mottram, DS, Enser, M & Wood, JD (1997) Novel thiazoles and 3-thiazolines in cooked beef aroma. Journal of Agricultural and Food Chemistry 45, 36033607.CrossRefGoogle Scholar
Enser, M, Hallett, K, Hewett, B, Fursey, GAJ & Wood, JD (1996) Fatty acid content and composition of English beef, lamb and pork at retail. Meat Science 44, 443458.CrossRefGoogle Scholar
Enser, M, Hallett, KG, Hewett, B, Fursey, GAJ, Wood, JD & Harrington, G (1998) Fatty acid content and composition of UK beef and lamb muscle in relation to production system and implications for human nutrition. Meat Science 49, 329341.CrossRefGoogle ScholarPubMed
Enser, M, Scollan, ND, Choi, NJ, Kurt, E, Hallett, K & Wood, JD (1999) Effect of dietary lipid on the content of conjugated linoleic acid (CLA) in beef muscle. Animal Science (In the Press).CrossRefGoogle Scholar
Hertzman, C, Goransson, L & Ruderus, H (1988) Influence of fish meal, rape-seed and rape-seed meal in feed on the fatty acid composition and storage stability of porcine body fat. Meat Science 23, 3753.CrossRefGoogle Scholar
Koohmaraie, M, Shackleford, SD, Wheeler, TL, Lonergan, SM & Doumit, ME (1995) Muscle hypertrophy condition in lamb (callipyge): characterisation of effects on muscle growth and meat quality traits. Journal of Animal Science 73, 35963607.CrossRefGoogle ScholarPubMed
Kretchmar, DH, Hathaway, MR, Epley, RJ & Dayton, WR (1990) Alterations in postmortem degradation of myofibrillar proteins in muscle of lambs fed a beta-adrenergic agonist. Journal of Animal Science 68, 17601772.CrossRefGoogle ScholarPubMed
Larick, DK, Hedrick, HB, Bailey, ME, Williams, JE, Hancock, DL, Garner, GB & Morrow, RE (1987) Flavour constituents of beef as influenced by forage and grain feeding. Journal of Food Science 52, 245251.CrossRefGoogle Scholar
Larick, DK & Turner, BE (1990) Flavour characteristics of forage- and grain-fed beef as influenced by phospholipid and fatty acid compositional differences. Journal of Food Science 55, 312368.CrossRefGoogle Scholar
Lawrie, RA (1998) Meat Science, 6th ed. Cambridge: Woodhead Publishing Ltd.Google Scholar
Melton, SL (1990) Effects of feeds on flavour of red meat: a review. Journal of Animal Science 68, 44214435.CrossRefGoogle ScholarPubMed
Mottram, DS (1992) Meat flavour. Meat Focus International June 1992 issue, 8192.Google Scholar
Mottram, DS & Salter, LJ (1989) Flavour formation in meat-related Maillard systems containing phospholipids. In Thermal Generation of Aromas, pp. 442451 [Parliment, TH, McGorrin, RJ and Ho, CT, editors]. Washington, DC: American Chemical Society.CrossRefGoogle Scholar
Overland, M, Tangbol, O, Haug, A & Sundstol, E (1996) Effect of fish oil on growth performance, carcass characteristics, sensory parameters and fatty acid composition in pigs. Acta Agriculturae Scandinavica 46, 1117.CrossRefGoogle Scholar
Park, RJ, Ford, AL & Ratcliffe, D (1975) Effect on meat flavour of period of feeding a protected lipid supplement to lambs. Journal of Food Science 40, 12171221.CrossRefGoogle Scholar
Rhee, KS, Ziprin, YA, Ordonez, G & Bohac, CE (1988) Fatty acid profiles of the total lipids and lipid oxidation in pork muscles as affected by canola oil in the animal diet and muscle location. Meat Science 23, 201210.CrossRefGoogle ScholarPubMed
Riley, P, Enser, M, Hallett, K, Hewett, B, Wood, J & Atkinson, J (1998 a) Long-term feeding of low levels of linseed before slaughter to manipulate tissue fatty acid composition and improve pork nutritional value. Proceedings of the 15th International Pig Veterinary Science Congress, vol. 2, p. 16. Nottingham: Nottingham University Press.Google Scholar
Riley, P, Enser, M, Hallett, K, Hewett, B, Wood, J & Atkinson, J (1998 b) Short-term feeding of a high level of linseed before slaughter to rapidly alter tissue fatty acid composition and improve pork nutritional value. Proceedings of the 15th International Pig Veterinary Science Congress, vol. 3, p. 28. Nottingham: Nottingham University Press.Google Scholar
Rousset-Akrim, S, Young, OA & Berdagué, JL (1997) Diet and growth effects in panel assessment of sheepmeat odour and flavour. Meat Science 45, 169181.CrossRefGoogle ScholarPubMed
Sanudo, C, Nute, GR, Campo, MM, Maria, G, Baker, A, Sierra, I, Enser, M & Wood, JD (1998) Assessment of commercial lamb meat quality by British and Spanish taste panels. Meat Science 48, 9199.CrossRefGoogle ScholarPubMed
Scott, TW, Cook, LJ & Mills, SC (1971) Protection of dietary polyunsaturated fatty acids against microbial hydrogenation in ruminants. Journal of the American Oil Chemists Society 48, 358364.CrossRefGoogle Scholar
Shackelford, SD, Reagan, JO, Haydon, KD & Miller, MF (1990) Effects of feeding elevated levels of monounsaturated fats to growing-finishing swine on acceptability of boneless hams. Journal of Food Science 55, 14851517.CrossRefGoogle Scholar
Smith, GC, Carpenter, ZL, Cross, HR, Murphey, CE, Abraham, HC, Savell, JW, Davis, GW, Berry, BW & Parrish, FC (1984) Relationship of USDA marbling groups to palatability of cooked beef. Journal of Food Quality 7, 289308.CrossRefGoogle Scholar
Smith, GC, Dutson, TR, Hostetler, RL & Carpenter, ZL (1976) Fatness, rate of chilling and tenderness of lamb. Journal of Food Science 41, 748756.CrossRefGoogle Scholar
Vatansever, L, Kurt, E, Richardson, RI, Nute, GR, Enser, M, Scollan, ND & Wood, JD (1999) Phospholipid fatty acids and meat quality in cattle breeds fed different diets. Proceedings of the British Society of Animal Science (In the Press).CrossRefGoogle Scholar
Warren, KB & Kastner, CL (1992) A comparison of dry-aged and vacuum-aged beef strip loins. Journal of Muscle Foods 3, 151157.CrossRefGoogle Scholar
Warriss, PD, Kestin, SC, Brown, SN & Nute, GR (1990) The quality of pork from traditional pig breeds. Meat Focus International 5, 179182.Google Scholar
West, RL & Myer, RO (1987) Carcass and meat quality characteristics and backfat fatty acid composition of swine as affected by the consumption of peanuts remaining in the field after harvest. Journal of Animal Science 65, 475488.CrossRefGoogle ScholarPubMed
Wong, E, Nixon, LN & Johnson, CB (1975) Volatile medium chain fatty acids and mutton flavour. Journal of Agricultural and Food Chemistry 23, 495498.CrossRefGoogle Scholar
Wood, JD (1990) Consequences for meat quality of reducing carcass fatness. In Reducing Fat in Meat Animals, pp. 344397 [Wood, JD and Fisher, AV, editors]. London: Elsevier Applied Science.Google Scholar
Wood, JD, Brown, SN, Nute, GR, Whittington, FM, Perry, AM, Johnson, SP & Enser, M (1996) Effects of breed, feed level and conditioning time on the tenderness of pork. Meat Science 44, 105112.CrossRefGoogle ScholarPubMed
Wood, JD, Enser, M, Fisher, AV, Nute, GR, Richardson, RI & Sheard, PR (1998) Meat quality: an integrated approach for the future. Proceedings of the 15th International Pig Veterinary Society Congress, vol. 1, pp. 103113. Nottingham: Nottingham University Press.Google Scholar
Wood, JD, Enser, MB, MacFie, HJH, Smith, WC, Chadwick, JP & Ellis, M (1978) Fatty acid composition of backfat in Large White pigs selected for low backfat thickness. Meat Science 2, 289300.CrossRefGoogle ScholarPubMed
Wood, JD, Enser, M, Whittington, FM, Moncrief, CB & Kempster, AJ (1989) Backfat composition in pigs: differences between fat thickness groups and sexes. Livestock Production Science 22, 351362.CrossRefGoogle Scholar
Wood, JD, Nute, GR, Whittington, FM, Kay, RM & Perrott, JG (1994) Effects of molassed sugar beet feed on pigmeat quality. Animal Science 58, 471472.Google Scholar
Young, OA, Berdagué, JL, Viallon, C, Rousset-Akrim, S & Theriez, M (1997) Fat-borne volatiles and sheepmeat odour. Meat Science 45, 183200.CrossRefGoogle ScholarPubMed
Young, OA, Reid, DH & Scales, GH (1993) Effect of breed and ultimate pH on the odour and flavour of sheep meat. New Zealand Journal of Agricultural Research 36, 363370.CrossRefGoogle Scholar