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Antioxidant and Antimicrobial Efficacy of Sapota Powder in Pork Patties Stored under Different Packaging Conditions

  • Kumar, Pavan (Department of Livestock Products Technology, College of Veterinary Science, Guru Angad Dev Veterinary and Animal Sciences University) ;
  • Chatli, Manish Kumar (Department of Livestock Products Technology, College of Veterinary Science, Guru Angad Dev Veterinary and Animal Sciences University) ;
  • Mehta, Nitin (Department of Livestock Products Technology, College of Veterinary Science, Guru Angad Dev Veterinary and Animal Sciences University) ;
  • Malav, Om Prakash (Department of Livestock Products Technology, College of Veterinary Science, Guru Angad Dev Veterinary and Animal Sciences University) ;
  • Verma, Akhilesh Kumar (Department of Livestock Products Technology, College of Veterinary Science, Guru Angad Dev Veterinary and Animal Sciences University) ;
  • Kumar, Devendra (Department of Livestock Products Technology, College of Veterinary Science, Guru Angad Dev Veterinary and Animal Sciences University) ;
  • Rathour, Manjeet (Department of Livestock Products Technology, College of Veterinary Science, Guru Angad Dev Veterinary and Animal Sciences University)
  • Received : 2018.03.30
  • Accepted : 2018.05.29
  • Published : 2018.06.30

Abstract

The present study was undertaken to assess the efficacy of sapota powder (SP) as natural preservatives and its better utilization in food processing with the incorporation of various levels of SP (2, 4, and 6%) by replacing lean meat. Based on the sensory attributes, pork patties with 4% incorporation of SP was found optimum and selected for further storage studies with control under aerobic and modified atmosphere packaging at refrigeration temperature ($4{\pm}1^{\circ}C$) for 42 days for assessing its antioxidant and antimicrobial efficiency. During entire storage period, indicators of lipid oxidative parameters such as thiobarbituric acid reactive substances (TBARS), free fatty acids (FFA) and peroxide value (PV) followed an increasing trend for control as well as treated products; however, treated product showed a significantly (p<0.05) lower value than control. A significantly lower (p<0.05) microbial count in treated patties than control was noted during entire storage. The sensory attributes are better retained in treated product as compared to control and even on $42^{nd}$ day, overall acceptability of treated patties was found to fall in moderately acceptable category (5.95 in aerobic packets and 5.91 in modified atmosphere packets). Therefore SP has potential to enhance antioxidant and antimicrobial properties of pork patties during storage.

Keywords

References

  1. Ahn J, Grun IU, Mustapha A. 2004. Antimicrobial and antioxidant activities of natural extracts in vitro and in ground beef. J Food Prot 67:148-155. https://doi.org/10.4315/0362-028X-67.1.148
  2. AOAC. 2000. Official methods of analysis. 17th ed. AOAC International. Gaithersburg, MD, USA.
  3. APHA. 1984. Compendium of methods for microbiological examination of foods. 2nd ed. American Public Health Association. Washington, DC, USA.
  4. Bhat ZF, Kumar S, Kumar, P. 2015. Effect of Aloe vera on the lipid stability and storage quality of chicken nuggets. Nutr Food Sci 45:54-67. https://doi.org/10.1108/NFS-04-2014-0034
  5. Bourne MC. 1978. Texture profile analysis. Food Tech 32:62-66.
  6. Chatli MK, Kumar P, Mehta N, Verma AK, Kumar D, Malav OP. 2015. Quality characteristics and storage stability of emu meat nuggets formulated with finger millet (Eleusine coracana) flour. Nutr Food Sci 45:740-752. https://doi.org/10.1108/NFS-03-2015-0029
  7. Jay JM. 1996. Modern food microbiology. 5th ed. Chapman and Hall, New York, USA. pp 28-86.
  8. Kato K, Terao S, Shimamoto N, Hirata M. 1988. Studies on scavengers of active oxygen species. 1. Synthesis and biological activity of 2-O-alkylascorbic acids. J Med Chem 31:793-798. https://doi.org/10.1021/jm00399a019
  9. Keeton JT. 1983. Effect of fat and NaCl/phosphate levels on the chemical and sensory properties of pork patties. J Food Sci 48:878-881. https://doi.org/10.1111/j.1365-2621.1983.tb14921.x
  10. Koniecko ES. 1979. Handbook for meat chemists. Avery, Wayne, NJ, USA. pp 53-55.
  11. Kumar D, Chatli MK, Mehta N, Verma AK, Kumar P. 2015a. Quality evaluation of chevon patties fortified with dietary fibre. Indian J Small Rumin 21:85-91. https://doi.org/10.5958/0973-9718.2015.00040.9
  12. Kumar V, Chatli MK, Wagh RV, Mehta N, Kumar P. 2015b. Effect of the combination of natural antioxidants and packaging methods on quality of pork patties during storage. J Food Sci Technol 52:6230-6241. https://doi.org/10.1007/s13197-015-1734-2
  13. Kyrana VR, Lougovois VP, Valsamis DS. 1997. Assessment of shelf‐life of maricultured gilthead sea bream (Sparus aurata) stored in ice. Int J Food Sci Technol 32:339-347. https://doi.org/10.1046/j.1365-2621.1997.00408.x
  14. Lawrie RA. 1998. Lawrie's meat science. 6th ed. Woodhead Publishing, Cambridge, UK. 176
  15. Leong LP, Shui G. 2002. An investigation of antioxidant capacity of fruits in Singapore markets. Food Chem 76:69-75. https://doi.org/10.1016/S0308-8146(01)00251-5
  16. Ma J, Luo XD, Protiva P, Yang H, Ma C, Basile MJ, Weinstein IB, Kennelly EJ. 2003. Bioactive novel polyphenols from the fruit of Manilkara zapota (Sapodilla). J Nat Prod 66:983-986. https://doi.org/10.1021/np020576x
  17. Moo-Huchin VM, Estrada-Mota I, Estrada-Leon R, Cuevas-Glory L, Ortiz-Vazquez E, De Lourdes Vargas y Vargas M, Betancur-Ancona D, Sauri-Duch E. 2014. Determination of some physicochemical characteristics, bioactive compounds and antioxidant activity of tropical fruits from Yucatan, Mexico. Food Chem 152:508-515. https://doi.org/10.1016/j.foodchem.2013.12.013
  18. Narender BR, Rajakumari M, Sukanya B, Harish S. 2017. Antimicrobial activity on peels of different fruits and vegetables. J Pharm Res 7:1-7.
  19. Raja WH, Kumar S, Bhat ZF, Kumar P. 2014. Effect of ambient storage on the quality characteristics of aerobically packaged fish curls incorporated with different flours. SpringerPlus 3:106. https://doi.org/10.1186/2193-1801-3-106
  20. Ribeiro da Silva LM, Teixeira de Figueiredo EA, Ricardo NMPS, Vieira IGP, Wilane de Figueiredo R, Brasil IM, Gomes CL. 2014. Quantification of bioactive compounds in pulps and byproducts of tropical fruits from Brazil. Food Chem 143:398-404. https://doi.org/10.1016/j.foodchem.2013.08.001
  21. Shirwaikar A, Shirwaikar A, Rajendran K, Punitha ISR. 2006. In-vitro antioxidant studies on the benzyl tetra isoquinoline alkaloid berberine. Biol Pharm Bull 29:1906-1910. https://doi.org/10.1248/bpb.29.1906
  22. Siddiqui MW, Longkumer M, Ahmad Md. S, Barman K, Thakur PK, Kabir J. 2014. Postharvest biology and technology of sapota: A concise review. Acta Physiol Plant 36:3115-3122. https://doi.org/10.1007/s11738-014-1696-4
  23. Singh T, Chatli MK, Kumar P, Mehta N, Malav OP. 2015a. Comparative efficacy of different binders in the development of chicken meat cutlets. J Anim Res 5:455-459. https://doi.org/10.5958/2277-940X.2015.00078.9
  24. Singh T, Chatli MK, Mehta N, Kumar P, Malav OP. 2015b. Effect of carrot powder on the quality attributes of fibre-enriched spent hen meat cutlets. J Anim Res 5:737-742. https://doi.org/10.5958/2277-940X.2015.00122.9
  25. Snedecor GW, Cochran WG. 1989. Statistical methods. 8thed. Iowa State University, Iowa, USA.
  26. Thomas R, Jebin N, Saha R, Sharma DK. 2016. Antioxidant and antimicrobial effects of kordoi (Averrho acarambola) fruit juice and bamboo (Bambusa polymorpha) shoot extract in pork nuggets. Food Chem 190:41-49. https://doi.org/10.1016/j.foodchem.2015.05.070
  27. Townsend WE, Witnauer LP, Riloff JA, Swift CE. 1968. Comminuted meat emulsions: Differential thermal analysis of fat transition. Food Tech 22:71.
  28. Ugalat J, Shivashankar S, Chandrashekhar H, Kalmesh GM. 2012. Biochemical changes in fruit pulp and seed in relation to corky tissue development of Sapota cv Cricket ball. Environ Ecol 30:1587-1590.
  29. Verma AK, Chatli MK, Kumar D, Kumar P, Mehta N. 2015a. Efficacy of sweet potato powder and added water as fat replacer on the quality attributes of low-fat pork patties. Asian Australas J Anim Sci 28:252-259.
  30. Verma AK, Singh VP, Pathak V. 2015b. Effect of jackfruit supplement and ageing on the physico-chemical, texture and sensory characteristics of Chevon patties. J Appl Anim Res 43:247-255. https://doi.org/10.1080/09712119.2014.963094
  31. Witte VC, Krause GF, Bailey ME. 1970. A new extraction method for determining 2-thiobarbituric acid value of pork and beef during storage. J Food Sci 35:582-585. https://doi.org/10.1111/j.1365-2621.1970.tb04815.x
  32. Woo PF, Yim HS, Khoo HE, Sia CM, Ang YK. 2013. Effects of extraction conditions on antioxidant properties of sapodilla fruit (Manilkara zapota). Int Food Res J 20:2065-2072.
  33. Yuan YV, Bone DE, Carrington MF. 2005. Antioxidant activity of dulse (Palmaria palmata) extract evaluated in-vitro. Food Chem 91:485-494. https://doi.org/10.1016/j.foodchem.2004.04.039

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