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Comparison of Post-Harvest Character and Storability at Several Temperature for Lactuca indica L. Baby and Adult Leaves

왕고들빼기 어린잎과 성체의 수확 후 특성과 온도별 저장성 비교

  • Kim, Ju Young (Division of Horticulture and Systems Engineering, Program of Horticulture, Kangwon National University) ;
  • Han, Su Jeong (Division of Horticulture and Systems Engineering, Program of Horticulture, Kangwon National University) ;
  • Wang, Lixia (Division of Horticulture and Systems Engineering, Program of Horticulture, Kangwon National University) ;
  • Choi, In-Lee (Division of Horticulture and Systems Engineering, Program of Horticulture, Kangwon National University) ;
  • Kang, Ho-Min (Division of Horticulture and Systems Engineering, Program of Horticulture, Kangwon National University)
  • 김주영 (강원대학교 원예.시스템공학부 원예과학전공) ;
  • 한수정 (강원대학교 원예.시스템공학부 원예과학전공) ;
  • 왕립 (강원대학교 원예.시스템공학부 원예과학전공) ;
  • 최인이 (강원대학교 원예.시스템공학부 원예과학전공) ;
  • 강호민 (강원대학교 원예.시스템공학부 원예과학전공)
  • Received : 2019.03.13
  • Accepted : 2019.04.24
  • Published : 2019.04.30

Abstract

Lactuca indica L. ('Seonhyang') baby leaves were harvested after cultivation for 4 weeks (less than 10 cm plant height) and adults were cultivated for 8 weeks ($20{\pm}5cm$ plant height). The respiration rate and the ethylene production rate of Lactuca indica leaves were higher than those of the baby leaves but the DPPH radical scavenging ability was lower than baby leaves. The $L^*$, $a^*$ and $b^*$ values did not show any significant difference between baby leaves and adult leaves but the chlorophyll content was higher in adult leaves. All adult and baby leaves of Lactuca indica were stored at $2^{\circ}C$, $8^{\circ}C$, and $20^{\circ}C$, respectively. The higher the storage temperature, the higher the fresh weight loss rate and weight loss rate of adult leaves was lower at $2^{\circ}C$ and $8^{\circ}C$. The visual quality of Lactuca indica leaves were determined by the panel test during storage and it deteriorated faster as the storage temperature increased. The shelf life that calculated the period of maintaining higher than 3 points of visual quality was longer than 1.6 days at $2^{\circ}C$, 1.4 days at $8^{\circ}C$ and 1.5 days at $20^{\circ}C$. The oxygen and carbon dioxide concentrations within the package of Lactuca indica leaves were similar to those in atmosphere. The chlorophyll content was maintained higher at lower storage temperature in the last storage day and the off-odor was higher in baby leaves than in the adult leaves of Lactuca indica L.

왕고들빼기(선향 품종)을 4주 간격으로 파종하여, 4주 동안 재배하여 어린잎(초장 10cm 이하)과 8주 동안 재배하여 성체(초장이 $20{\pm}5cm$) 상태에서 수확하였다. 수확직후 조사한 호흡률과 에틸렌 발생률은 모두 어린잎이 성체보다 높았으며, DPPH 라디컬 소거능도 성체에 비해 어린잎에서 높았다. 잎의 $L^*$, $a^*$, $b^*$값은 어린잎과 성체가 유의적인 차이를 보이지 않았고 엽록소 함량은 성체에서 높았다. 왕고들빼기 성체와 어린잎을 미세천공 필름으로 포장하여 $2^{\circ}C$, $8^{\circ}C$, 및 $20^{\circ}C$에서 저장하였을 때, 저장온도가 높을수록 생체중 감소율이 높았으며, $2^{\circ}C$$8^{\circ}C$에서는 성체의 생체중 감소율이 낮았다. 저장 중 패널테스트를 통해 진행한 외관상 품질도 저장온도가 높을수록 빠르게 나빠졌다. 또한 외관상 품질이 3점을 유지되었던 기간으로 계산한 저장수명은 성체가 $2^{\circ}C$에서는 1.6일, $8^{\circ}C$에서는 1.4일, 그리고 $20^{\circ}C$에서는 1.5일 어린잎보다 더 길었다. 저장 종료일 조사한 포장 내 산소 및 이산화탄소 농도는 대기 중 농도와 유사한 수준이었다. 저장 종료일의 엽록소 함량은 저장온도가 낮을수록 높게 유지되었고, 패널테스트로 조사한 이취는 어린잎에서 더 높은 수준이었다.

Keywords

References

  1. Ahn, S.Y., J.H. Kim, S.J. Choi, and Y.J. Kim. 2009. Current status and prospect of cultivation of wild vegetable crops. Kor. J. Hort. Sci. Technol. 27:36(Abstr.).
  2. Bae, J.H., J.Y. Cho, S.Y. Yang, B.W. Kim, H.G. Jang, S.U. Chon, and B.G. Heo. 2005. The actual distributing states of the fresh wild vegetables in the five-day traditional markets of the southern districts in Korea. Kor. J. Community Living Sci. 16:17-24.
  3. Cho, E.J. 2000. A survey on the usage of wild grasses. Korean J. Dietary Culture 15:59-68.
  4. Choi, S.J., H.S. Noh, Y.B. Kim, and S.W. Kim. 2015. Effects of plastic house and fertigation for culture of Lactuca indica L. 'Seonhyang'. Kor. J. Hort. Sci. Technol. 33:82.
  5. Choi, C.I., H.J. Eom, and K.H. Kim. 2016. Antioxidant and ${\alpha}$- glucosidase inhibitory phenolic constituents of Lactuca indica L. Russian Journal of Bioorganic Chemistry 42(3):310-315. https://doi.org/10.1134/S1068162016030079
  6. Finger, F.L., L. Endres, P.R. Mosquim, and M. Puiatti. 1999. Physiological changes during postharvest senescence of broccoli. Pesq. Agropec. Bras. 34:1565-1569. https://doi.org/10.1590/S0100-204X1999000900006
  7. Heo, B.G., Y.J. Park, D.M. Oh, S.R. Lee, C.E. Song, K.O. Kang, and J.Y. Cho. 2011. Understanding, discerning power and existence of edible experience of wild vegetable crops on twenties. J. Korean Soc. People Plants Environ. 14:399-408.
  8. Jeong, M.J. I.L. Choi, H.S. Yoon, J.P. Back, and H.M. Kang. 2015. Determination of suitable film for several compositae baby leaf vegetables MAP (modified atmosphere packaging) using OTR film. Journal of Agricultural, Life and Environmental Sciences 27:56-60.
  9. Kader, A.A. 2002. Postharvest technology of horticultural crops. 3rd Ed. University of California, Division of Agriculture and Natural Resources. Oakland, CA, USA.
  10. Kays, S.J. and R.E. Paull. 2004. Postharvest biology. Exon Press, Athens, GA, USA.
  11. Kim, J.N., J.M. Kim, and K.S. Lee. 2012a. Antioxidant activity of methanol extracts from Lactuca indica. Korean J. Food. Preserv. 19:294-300. https://doi.org/10.11002/kjfp.2012.19.2.294
  12. Kim, K.H., N.Y. Kim, S.H. Kim, I.A. Han, and H.S. Yook. 2012b. Study on antioxidant effects of fractional extracts from Ligularia stenocephala leaves. J. Korean Soc. Food Sci. Nutr. 41:1220-1225. https://doi.org/10.3746/jkfn.2012.41.9.1220
  13. Kim, K.T., H.M. Seog, S.S. Kim, Y.T. Lee, and H.D. Hong. 1994. Changes in physicochemical characteristics of barley leaves during growth. Korean J. Food Sci. Technol. 24:471-474.
  14. Kim, J.M., J.N. Kim, K.S. Lee, S.R. Shin, and K.Y. Yoon. 2012c. Comparison of physicochemical properties of wild and cultivated Lactuca indica. J. Korean Soc. Food Sci. Nutr. 41:526-532. https://doi.org/10.3746/jkfn.2012.41.4.526
  15. Kim, J.Y., S.J. Han, I.L. Choi, J.S. Yoon, Y.H. Moon, S.M. Kim, and H.M. Kang. 2018. Effects of OTR film type on the quality of Lepidium sativum L. baby leaf vegetable during MA storage. Protected Horticulture and Plant Factory 27(2): 180-184. https://doi.org/10.12791/KSBEC.2018.27.2.180
  16. Kwack, Y., D.S. Kim, and C. Chun. 2015. Growth and quality of baby leaf vegetables hydroponically grown in plant factory as affected by composition of nutrient solution. Protected Horticulture and Plant Factory. 24:271-274. https://doi.org/10.12791/KSBEC.2015.24.4.271
  17. Kwon, H.J., E.K. Jeong, H.J. Jeong, S.C. Kim, N.K. Heo, and H.S. Noh. 2015. Proximate compositions and biological activities of Lactuca indica L. Seonhyang and wild species depending on harvesting time. J. Korean Soc. Food Sci. Nutr. 44:363-369. https://doi.org/10.3746/jkfn.2015.44.3.363
  18. Kwon, H.J., E.K. Jeong, S.J. Han, H.J. Jeong, S.C. Kim, and N.K. Heo. 2013. Analysis of antioxidant activity and physicochemical properties of Lactuca indica L. 'Seonhyang' according to cultivation time. J. Korean Soc. Food Sci. Nutr. 41:526-532. https://doi.org/10.3746/JKFN.2012.41.4.526
  19. Lee, H.E., J.S. Lee, J.W. Choi, D.H. Pae, and K.R. Do. 2009. Effect of mechanical stress on postharvest quality of baby leaf vegetables. Korean J. Food Preserv. 16:699-704.
  20. Lee, J.S., J.W. Choi, D.S. Chung, C.L. Lim, T.C. Seo, G.L. Do, and C. Chun. 2005. Effects of lettuce (Lactuca sativa L.) cultivars and cultivation methods on growth, quality, and shelf-life. Kor. J. Hort. Sci. Technol. 23:12-18.
  21. Lim, S.C. 2009. Utilization and processing of wild vegetables. Kor. J. Hort. Sci. Technol. 27:36(Abstr.).
  22. Loaiza, J. and M. Cantwell. 1997. Postharvest physiology and quality of cilantro (Coriandrum sativum L.). HortScience 32:104-107. https://doi.org/10.21273/HORTSCI.32.1.104
  23. Lopez-Galvez, G., G. Peiser, X. Nie, and M. Cantwell. 1997. Quality changes in packaged salad products during storage. Z. Lebensm Unters Forsch A. 205:64-72. https://doi.org/10.1007/s002170050125
  24. Moon, S.G., S.H. Jeong, and C.M. Choi. 2003. Classification of the edible plants on the market in Busan. Kor. J. Life Sci. 13:764-774. https://doi.org/10.5352/JLS.2003.13.6.764
  25. Noh, H.S. and J.W. Kim. 2013. Lepidium sativum wild vegetable lance asiabell (Codonopsis lanceolata (siebold & zucc.) trautv.), tangshen (Codonopsis pilosula (franch.) nannf.) and garden cress (Lepidium sativum L.) to be used by bab. Kor. J. Hort. Sci. Technol. 31:51(Abstr.).
  26. Noh, H.S., J.W. Kim, S.W. Kim, and I.J. Kim. 2013. Proper depth of medium, temperature, and light intensity for boxculture in garden cress (Lepidium sativum L.) to be used by baby vegetable. Kor. J. Hort. Sci. Technol. 31:55-56(Abstr.).
  27. Oboh, G. 2005. Effect of blanching on the antioxidant properties of some tropical green leafy vegetables. LWT. 38:513-517. https://doi.org/10.1016/j.lwt.2004.07.007
  28. Park, K.W., H.M. Kang, and C.H. Kim. 2000. Comparison of storability on film sources and storage temperature for fresh Japanese mint in MA storage. J. Bio-Eniviron. Cont. 9:40-46.
  29. Zhang, M., J.D. Baerdemaeker, and E. Schrevens. 2003. Effects of different varieties and shelf storage conditions of chicory on deteriorative color changes using digital image processing and analysis. Food Research International. 36:669-676. https://doi.org/10.1016/S0963-9969(03)00015-2
  30. Yamazaki, K. 1982. Encyclopedia of hydroponics (in Japanese). Hakuyusha Co., Tokyo, Japan.