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Analysis of Volatile Flavor Components of the Essential Oil from Chrysanthemum coronarium var. spatiosum Bailey

쑥갓으로부터 추출한 정유의 휘발성 향기성분 분석

  • 최향숙 (경인여자대학교 식품영양과)
  • Received : 2022.01.24
  • Accepted : 2022.05.16
  • Published : 2022.06.30

Abstract

This study investigated the volatile flavor components of the essential oil from Chrysanthemum coronarium var. spatiosumBailey. The essential oil obtained from the aerial parts of the plant by the hydrodistillation extraction method was analyzed by gas chromatography and gas chromatography-mass spectrometry. One hundred and one (99.11%) volatile flavor components were identified in the essential oil from the Chrysanthemum coronarium var. spatiosum Bailey. The major compounds were hexanedioic acid, bis(2-ethylhexyl) ester (12.45%), 6.10.14-trimethyl-2-pentadecanone (7.94%), 1-(phenylethynyl)-1-cyclohexanol (6.34%), α-farnesene (5.55%), phytol (4.99%), and α-caryophyllene (4.39%). When the volatile flavor components of Chrysanthemum coronarium var. spatiosum Bailey were classified by functional group, the content was high in the order of hydrocarbons, alcohols, esters, ketones, aldehydes, and phthalides. Sesquiterpene hydrocarbons were the most common hydrocarbons, mainly due to α-farnesene and α-caryophyllene. Among the alcohols, the content of aliphatic alcohols was significantly higher, mainly due to 1-(phenylethnyl)-1-cyclohexanol (6.34%) and phytol (4.99%). The analysis of the volatile flavor components of Chrysanthemum coronarium var. spatiosum Bailey in this study will provide useful information to consumers when purchasing food and to industries using fragrance ingredients.

Keywords

References

  1. Amiel E, Ofir R, Dudai N, Soloway E, Rabinsky T, Rachmilevitch S. 2012. β-Caryophyllene, a compound isolated from the biblical balm of gilead (Commiphora gileadensis), is a selective apoptosis inducer for tumor cell lines. Evid Based Complement Alternat Med 2012:872394
  2. Al-Qudah MA. 2013. Chemical composition of essential oil from Jordanian Lupinus varius L. Arab J Chem 6:225-227 https://doi.org/10.1016/j.arabjc.2011.01.012
  3. Arctander S. 1969. Perfume and Flavor Chemicals: Aroma Chemicals. Montclair
  4. Cho MJ, Park MJ, Lee HS. 2007. Nitrite scavenging ability and SOD-like activity of a sterol glucoside from Chrysanthemum coronarium L. var. spatiosum. Korean J Food Sci Technol 39:77-82
  5. Choi HS. 2015. The variation of the major compounds of Artemisia princeps var. orientalis (Pampan) Hara essential oil by harvest year. Korean J Food Nutr 28:533-543 https://doi.org/10.9799/KSFAN.2015.28.4.533
  6. Choi HS. 2016. Chemical composition of Cirsium japonicumvar. ussurience Kitamura and the quantitative changes of major compounds by the harvesting season. Korean J Food Nutr 29:327-334 https://doi.org/10.9799/KSFAN.2016.29.3.327
  7. Choi HS. 2021. Analysis of essential oils extracted from fresh and shade-dried leaves of Synurus deltoides (Arr.) Nakai. Korean J Food Nutr 34:224-232 https://doi.org/10.9799/KSFAN.2021.34.2.224
  8. Choi HS, Sawamura M. 2000. Composition of the essential oil of Citrus tamurana Hort. ex Tanaka (Hyuganatsu). J Agric Food Chem 48:4868-4873 https://doi.org/10.1021/jf000651e
  9. Ge S, Peng W, Li D, Mo B, Zhang M, Qin D. 2015. Study on antibacterial molecular drugs in Eucalyptus granllawood extractives by GC-MS. Pak J Pharm Sci 28:1445-1448
  10. Heath HB. 1986. Flavor Chemistry and Technology. pp.2-157. MacMillan
  11. Hong TH, Kim KY, Kim CR, Seo JK, Oh CH, Jung YJ. 2011. Food Materials Science. pp.136-137. Jigu
  12. Jang MR, Seo JE, Lee JH, Chung MS, Kim GH. 2010. Antibacterial action against food-borne pathogens by the volatile flavor of essential oil from Chrysanthemum morifolium flower. Korean J Food Nutr 23:154-161
  13. Kim IH, Cho KJ, Ko JS, Kim JH, Om AS. 2012. The protective effects of Chrysanthemum cornarium L. var. spatiosum extract on HIT-T15 pancreatic β-cells against alloxan-induced oxidative stress. Korean J Food Nutr 25:123-131 https://doi.org/10.9799/KSFAN.2012.25.1.123
  14. Kim MR. 2005. A new analytical method for volatile components and their biological activities in Korean medicinal plant, Danggui. Ph.D. Thesis, Chonnam National Univ. Gwangju. Korea
  15. Kim TJ. 2009. Wilds Flowers and Resources Plants in Korea. Vol. 5. p.129. Seoul National University Press
  16. Lee EK, Shin MC, Jung SH. 2017. Volatile compound analysis and anti-oxidant and anti-inflammatory effects of Oenanthe javanica, Perilla frutescens, and Zanthoxylum piperitum essential oils. Asian J Beauty Cosmetol 15:355-366 https://doi.org/10.20402/ajbc.2016.0142
  17. Lee SE, Lee JH, Kim JK, Kim GS, Kim YO, Soe JS, Choi JH, Lee ES, Noh HJ, Kim SY. 2011. Anti-inflammatory activity of medicinal plant extracts. Korean J Med Crop Sci 19:217-226 https://doi.org/10.7783/KJMCS.2011.19.4.217
  18. Li D, Peng W, Ge S, Mo B, Zhang Z, Qin D. 2014. Analysis on active molecules in Populus nigra wood extractives by GC-MS. Pak J Pharm Sci 27:2061-2065
  19. Oh SI, Lee MS. 2003. Screening for antioxidative and antimutagenic capacities in 7 common vegetables taken by Korean. J Korean Soc Food Sci Nutr 32:1344-1350 https://doi.org/10.3746/JKFN.2003.32.8.1344
  20. Okuyama T, Takata M, Nishino H, Nishino A, Takayasu J, Iwashima A. 1990. Studies on the antitumor-promoting activity of naturally occurring substances. II. Inhibition of tumor-promoter-enhanced phospholipid metabolism by umbelliferous materials. Chem Pharm Bull 38:1084-1086 https://doi.org/10.1248/cpb.38.1084
  21. Oyinloye OE, Alabi OS, Ademowo OG. 2020. In vitroantimicrobial, anti-oxidant properties and GC-MS analysis of the crude methanolic extract and fractions of Solanum dasyphyllum Schumach and Thonn. leaves. Available from https://www.researchsquare.com/article/rs-125789/v1 [cited 4 January 2022]
  22. Park SH, Kim GY. 2010. Blood glucose level, insulin content and biochemical variables of complexcity extract from oriental medicinal plants on diabetes rats. Korean J Food Nutr 23:258-268
  23. Schultz TH, Flath RA, Mon TR, Eggling SB, Teranishi R. 1977. Isolation of volatile components from a model system. J Agric Food Chem 25:446-449 https://doi.org/10.1021/jf60211a038
  24. The Metabolomics Innovation Centre [TMIC]. 2022. Showing compound 6,10,14-trimethylpentadecan-2-one (FDB007640). Available from https://foodb.ca/compounds/FDB007640[cited4 January 2022]
  25. Van Wassenhove FA, Dirinck PJ, Schamp NM, Vulsteke GA. 1990. Effect of nitrogen fertilizers on celery volatiles. J Agric Food Chem 38:220-226 https://doi.org/10.1021/jf00091a049