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Changes of Storability and Quality Characteristics of 'Autumn Sense' Hardy Kiwifruit According to Ethylene Treatment and Storage Condition

에틸렌 처리와 저장조건에 따른 '오텀센스' 다래의 저장성 및 품질특성 변화

  • Oh, Sung-Il (Division of Special-purpose Trees, Korea Forest Research Institute) ;
  • Kim, Chul Woo (Division of Special-purpose Trees, Korea Forest Research Institute) ;
  • Kim, Mahn-Jo (Division of Special-purpose Trees, Korea Forest Research Institute)
  • 오성일 (국립산림과학원 특용자원연구과) ;
  • 김철우 (국립산림과학원 특용자원연구과) ;
  • 김만조 (국립산림과학원 특용자원연구과)
  • Received : 2014.05.13
  • Accepted : 2014.07.10
  • Published : 2014.09.30

Abstract

This study was investigated the changes of storability and quality characteristics of 'Autumn Sense' hardy kiwifruit according to ethylene treatment and storage condition. In the results of investigation of changes in hardy kiwifruit quality during storage period, hardness of ethylene treated hardy kiwifruit during 48 and 96 hours was rapidly decreased, but soluble solid content was rapidly increased with the passing of storage period in all treatment groups. The total acid was estimated from 0.7 to 1.4% with storage period in all treatment groups. In the results of investigation of the weight loss rate, ethylene treated hardy kiwifruit during 48 hours was the highest 30.9% in storage at $20^{\circ}C$ and lowest 5.9% in storage at $2^{\circ}C$ with a relative air humidity of about 90% during storage at 24 days. Ethylene treated hardy kiwifruit during 96 hours was decrease 29.4% in storage at $20^{\circ}C$, 20.7% in storage at $4^{\circ}C$, 12.1% in storage at $2^{\circ}C$, and 6.0% in storage at $2^{\circ}C$ with a relative air humidity of about 90% during storage at 22 days. The taste of hardy kiwifruit during storage was reduced to increase in all treatment groups. Particularly, storage at $20^{\circ}C$ was rapidly reduced to increase in the early storage and storage at $2^{\circ}C$ with a relative air humidity of about 90% was decrease after storage at 18 days. The rotten rate during storage was increased in all treatment groups, storage at $20^{\circ}C$ was after storage at 2 days and storage at $2^{\circ}C$ with a relative air humidity of about 90% was rapidly increased after storage at 16 days. Thus, it can be recommended that storage at $2^{\circ}C$ with a relative air humidity of about 90% is good to maintain quality. Also, we will decide optimal storage condition and after-ripening time of 'Autumn Sense' hardy kiwifruit.

본 연구는 에틸렌 처리와 저장조건에 따른 '오텀센스' 다래의 저장성과 품질 변화를 조사하기 위하여 수행하였다. 다래의 저장 중 품질변화를 관찰한 결과, 48시간과 96시간동안 에틸렌을 처리한 모든 처리구에서 경도는 저장기간이 경과함에 따라 급격히 감소하였으나, 당도는 급격히 증가하였다. 산도는 모든 처리구에서 0.7~1.4%수준으로 나타났다. 저장기간 동안 다래의 중량감소율을 조사한 결과, 48시간동안 에틸렌을 처리하고 저장한 다래는 저장 24일 동안 $20^{\circ}C$저장구에서 30.9%로 가장 높았으며, $2^{\circ}C$에 상대습도 90%저장구에서 5.9%로 가장 낮게 나타났다. 96시간동안 에틸렌을 처리하고 저장한 다래는 저장 22일 동안 $20^{\circ}C$저장구에서 29.4%, $4^{\circ}C$저장구에서 20.7%, $2^{\circ}C$저장구에서 12.1% 그리고 $2^{\circ}C$에 상대습도 90%저장구에서 6.0% 감소하였다. 저장기간 동안 다래의 식미는 모든 처리구에서 증가하다 감소하였다. 특히 $20^{\circ}C$저장구는 저장 초기에 급격히 증가하다 감소하였고, $2^{\circ}C$에 상대습도 90%저장구는 저장 18일 후에 감소하였다. 부패율은 모든 처리구에서 저장기간 동안 증가하였으며, $20^{\circ}C$저장구는 저장 2일 후, $2^{\circ}C$에 상대습도 90%저장구는 16일부터 급격히 증가하였다. 따라서, $2^{\circ}C$에 상대습도 90%의 저장조건이 다래의 품질을 유지하는데 효과적일 것으로 판단되며, '오텀센스' 다래의 적정 저장조건과 후숙시기를 판단할 수 있을 것이라 생각된다.

Keywords

References

  1. Bapat, V., Trivedi, P., Ghosh, A., Sane, V., Ganapathi, R., and Nath, P. 2010. Ripenimg of fleshy fruit: Molecular insight and the role of ethylene. Biotechnology Advances 28: 94-107. https://doi.org/10.1016/j.biotechadv.2009.10.002
  2. Chong, B.M., Kim, H.K., Rho, C.W., and Kang, D.J. 2000. Effect of duration of low temperature storage on fruit quality and ripe rot occurrence in 'Hayward' kiwifruit. Korean Journal of Horticultural Science & Technology 18: 195.
  3. Fan, X., Blankenship, S., and Mattheis, J. 1999. 1-Methylcyclopropene inhibits apple ripening. Journal of the American Society for Horticultural Science 124: 690-695.
  4. Ferguson, A.R. and Huang, H. 2007. Genetic resources of kiwifruit: Domestication and breeding. Horticultural Reviews 33: 1-121. https://doi.org/10.1002/9780470168011.ch1
  5. Fisk, C.L., McDaniel, M.R., Strik, B.C., and Zhao, Y. 2006. Physicochemical, sensory and nutritive qualities of hardy kiwifruit (Actinidia arguta 'Ananasnaya') as affected by harvest maturity and storage. Journal of Food Science. 71: 204-210. https://doi.org/10.1111/j.1365-2621.2006.tb15642.x
  6. Hansen, E. and Hartman, H. 1937. Effect of ethylene and certain metabolic gases upon respiration and ripening of pears before and after cold storage. Plant Physiology 12: 441-454. https://doi.org/10.1104/pp.12.2.441
  7. Kader, A.A. 1992. Postharvest biology and technology: an overview. In: Postharvest Technology of Horticultural Crops. A,A. Kader(ed). University of Califonia. Davis. CA, USA.
  8. Kang, B.K., Shin, E.J., Lee, S.H., Lee, D.S., Hur, S.S., Shin, K.S., Kim, S.H., Son, S.M., and Lee, J.M. 2011. Optimization of the acetic acid fermentation condition of apple juice. Korean Journal of Food Preservation 18: 980-985. https://doi.org/10.11002/kjfp.2011.18.6.980
  9. Krupa, T., Latocha, P., and Liwinska, A. 2011. Changes of physicochemical quality, phenolics and vitamin C content in hardy kiwifruit (Actinidia arguta and its hybrid) during storage. Scientia Horticulturae 130: 410-417. https://doi.org/10.1016/j.scienta.2011.06.044
  10. Langenkamper, G., McHale, R., Gardner, R.C., and McRae, E. 1998. Sucrose-phosphate synthase steady-state mRnA increases in ripening kiwifruit. Plant Molecular Biology 36: 857-869. https://doi.org/10.1023/A:1005964812161
  11. MacRae, E., Quick, W.P., Benker, C., and Stitt, M. 1992. Carbohydrate metabolism during postharvest ripening in kiwifruit. Planta 188: 314-323.
  12. Marsh, K., Attanayake, S., Walker, S., Gunson, A., Boldingh, H., and McRae, E. 2004. Acidity and taste in kiwifruit. Postharvest Biology and Technology 32: 159-168. https://doi.org/10.1016/j.postharvbio.2003.11.001
  13. Meilgaard, M., Civille, G.V., and Carr, B.T. 1991. Sensory evaluation techniques. 2 nd ed. CRC press.
  14. Nishiyama, I. 2007. Fruits of the Actinidia genus. Advances in Food and Nutrition Research 52: 293-324. https://doi.org/10.1016/S1043-4526(06)52006-6
  15. Nishiyama, I., Fukuda, T., and Oota, T. 2005. Genotypic differences in chlorophyll, lutein, and $\beta$-carotene contents in the fruits of Actinidia species. Journal of Agricultural and Food Chemistry 53: 6403-6407. https://doi.org/10.1021/jf050785y
  16. Nishiyama, I., Yamashita, Y., Yamanaka, M., Shimohashi, A., Fukuda, T., and Oota, T. 2004. Varietal difference in vitamin C content in the fruit of kiwifruit and other Actinidia species. Journal of Agricultural and Food Chemistry 52: 5472-5475. https://doi.org/10.1021/jf049398z
  17. Oh, S.I. and Kim, M.J. 2014. Changes in quality characteristics of peeled chestnut 'Tsukuba' according to storage temperature and peeling method. Korean Journal of Plant Resources 27: 072-079. https://doi.org/10.7732/kjpr.2014.27.1.072
  18. Okamoto, G. and Goto, S. 2005. Juice constituents in Actinidia arguta fruits produced in Shinjo, Okayama. Scientific Reports of the Faculty of Agriculture Okayama University 94: 9-13.
  19. Park, Y.S. 1996. The shelf life of kiwifruit in room temperature and cold storage following controlled atmospheres storage. Journal of Korean Society for Horticultural Science 37: 58-63.
  20. Shin, S.H., Jung, J.Y., Choi, J.H., Kim, D.M., and Jeong, M.C. 2009. Effect of packaging methods on enoki mushroom qualities. Korean Journal of Food Preservation 16: 179-185.
  21. Smock, E. and Blankenship, S. 1948. A study of maturity indices for McIntosh apples. Journal of the American Society for Horticultural Science 52: 176-182.
  22. Tavarini, S., Degl'Innocenti, E., Remorini, D., Massai, R., and Guidi, L. 2009. Polygalacturonase and $\beta$-galactosidase activities in Hayward Kiwifruit as affected by light exposure, maturity stage and storage time. Scientia Horticulturae 120: 342-347. https://doi.org/10.1016/j.scienta.2008.11.013
  23. Tu, K., Nicolai, B., and De Baerdemaeker, J. 2000. Effect of relative humidity on apple quality under simulated shelf temperature storage. Scientia Horticulturae 85: 217-229. https://doi.org/10.1016/S0304-4238(99)00148-X
  24. Villarreal, N.M., Rosli, H.G., Martinez, G.A., and Civello, P.M. 2008. Polygalacturonase activity and expression of related genes during ripening of strawberry cultivars with contrasting fruit firmness. Postharvest Biology and Technology 47: 141-150. https://doi.org/10.1016/j.postharvbio.2007.06.011
  25. Watkins, C., Nock, J., and Whitaker, B. 2000. Responses of early, mid, and late season apple cultivars to postharvest application of 1-Methylcyclopropene (1-MCP) under air and controlled atmosphere storage conditions. Postharvest Biology and Technology 19: 17-32. https://doi.org/10.1016/S0925-5214(00)00070-3
  26. Williams, M.H., Boyd, L.M., McNeilage, M.A., MacRae, E.A., Ferguson, A.R., Beatson, R.A., and Martin, P.J. 2003. Development and commercialization of 'Baby kiwi' (Actinidia arguta Planch.). Acta Horticulturae 610: 81-86.

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