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[Retracted] Optimization of Jirisan Mountain Cudrania tricuspidata leaf substance extraction across solvents and temperatures

  • Kim, Yong Ju (Department of Herbal Medicine Resources, College of Environmental and Bioresource Sciences, Chonbuk National University)
  • 투고 : 2018.03.08
  • 심사 : 2018.05.16
  • 발행 : 2018.06.30

초록

Objective: The aim of this study is to optimize the extraction of beneficial substance from Cudrania tricuspidata leaves grown at Jirisan Mountain in South Korea by three different solvents depending on extraction time and at different temperature. Methods: The total phenolic contents were determined by the method reported by $S{\acute{a}}nchez$-Moreno et al. The total flavonoid contents were analyzed by Slinkard and Singleton. The DPPH radical scavenging activity was determined according to the method reported by Blois Results: The extraction yield for each solvent is 9.05-14.1%, 2.17-5.67%, and 2.3-3.9% for D.W., ethanol, and hexane, respectively. The overall results were maximized for the extract obtained with D.W. for 5 min at $100^{\circ}C$. The average phenol contents were 77.11, 45.64, and 0.343 mg/g at $100^{\circ}C$ in water, $78^{\circ}C$ in ethanol, and $68^{\circ}C$ in hexane, respectively. The flavonoid contents were the highest in the materials extracted with D.W., and were increased with increasing temperature, regardless of the extraction solvents, whether water (green), polar organic ethanol, or nonpolar organic hexane. In the ethanol extract, the flavonoid contents are increased gradually from 5.66 mg/g to 7.73 mg/g. The total flavonoid contents were proportional to the concentrations of the water extracts, ranging from 4.14 mg/g to 48.89 mg/g. The antioxidative activities of the water-extracted compounds are generally increased with increasing temperature from 42.5% to 85.5%. Those of the hexane extracts are increased slowly from 3.79% to 8.8%, while those of ethanol extracts are increased from 29.8% to 47.4%. Conclusion: The extraction yields were dependent upon solvents for extraction as well as extraction time and the temperature. The optimal extraction time was 5 min and the extraction yields were increased with increasing temperature excepted hexane. Of the three tested extraction solvents, the greenest solvent of water shows excellent results, suggesting that water is among the most effective solvents for natural sample extractions for general medicinal, pharmaceutical, and food applications.

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참고문헌

  1. Lee BW, Lee J H, Lee ST, Lee HS, Lee WS, Jeong TS, et al. Antioxidant and cytotoxic activities of xanthones from Cudrania tricuspidata. Bioorganic & medicinal chemistry letters, 2005. 15(24): p. 5548-5552 https://doi.org/10.1016/j.bmcl.2005.08.099
  2. Lee JH, Lee BW, Kim JH, Seo WD, Jang KC, Park KH (2005) Antioxidant effects of isoflavones from the stem bark of Cudrania tricuspidata. Journal of Applied Biological Chemistry 48(4):193-197.
  3. Choi SR, You DH, Kim JY, Park CB, Kim DH, Ryu J, et al. ]Antimicrobial activity of methanol extracts from Cudrania tricuspidata Bureau according to the parts harvested and time]. Korean Journal of Medicinal Crop Science, 2009. 17(5): p. 335-340.
  4. Kim M, Kim IA, Ko YJ, Jeong JA, Kim JE, Song BJ, et al., [Methanol extract of leaves from Cudrania tricuspidata effects in HT-29 colorectal adenocarcinoma]. Korean J Oral maxillofac Pathol, 2009. 33: p. 19-26.
  5. Do GP, Lee HJ, Do JR, Kim HK. [Inhibition of Adipogenesis in 3T3-Ll Adipocytes with Water and Ethanol Ex- tracts of Cudrania tricuspidata Leaves[. Korean Journal of Food Preservation, 2011. 18(2): p. 244-249. https://doi.org/10.11002/kjfp.2011.18.2.244
  6. Nam DE, Kim OK, Lee J. [Terapeutic effects of Curdrania tricuspidata leaf extract on osteoarthritis]. Journal of the Korean Society of Food Science and Nutrition, 2013. 42(5): p. 697-704. https://doi.org/10.3746/jkfn.2013.42.5.697
  7. Han HS, Kim SY, Lim DJ, Whang WK. [Development of whitening cosmetic ingredients from Cudrania tricuspidata stem extract]. Asian Journal of Beauty and Cosmetology, 2016. 14(3): p. 317-328. https://doi.org/10.20402/ajbc.2016.0063
  8. Park JH, Lee KW, Sung KS, Kim SS, Cho KD, Lee BH, et al., [Effect of diets with mulberry leaf and Cudrania tricuspidata leaf powder supplements on blood glucose-related biomarkers in streptozotocin-induced diabetic rats]. Journal of the Korean Society of Food Science and Nutrition, 2012. 41(6): p. 766-773. https://doi.org/10.3746/jkfn.2012.41.6.766
  9. Park KH, Park YD, Han JM, Im KR, Lee BW, Jeong IY, et al. Anti-atherosclerotic and anti-inflammatory activities of catecholic xanthones and flavonoids isolated from Cudrania tricuspidata. Bioorganic & medicinal chemistry letters, 2006. 16(21):5580-5583. https://doi.org/10.1016/j.bmcl.2006.08.032
  10. Kang DG, Hur TY, Lee GM, Oh H, Kwon TO, Sohn EJ, et al. Effects of Cudrania tricuspidata water extract on blood pressure and renal functions in NO-dependent hypertension. Life Sciences, 2002. 70(22):2599-2609. https://doi.org/10.1016/S0024-3205(02)01547-3
  11. Bart HJ Extraction of Natural Products from Plants - An Introduction. In: Industrial Scale Natural Products Extraction. Wiley-VCH Verlag GmbH & Co. KGaA; 2001. 1-25.
  12. Grodowska K, Parczewski A. Organic solvents in the pharmaceutical industry. Acta Pol Pharm, 2010. 67(1):3-12.
  13. kumar S S, D S. Health Hazards of Organic Solvents. Research and Reviews Journal of Chemistry, 2015. 4(2):90-95.
  14. Castro-Puyana M, Marina ML, Plaza M. Water as green extraction solvent: Principles and reasons for its use. Current Opinion in Green and Sustainable Chemistry, 2017. 5:31-36. https://doi.org/10.1016/j.cogsc.2017.03.009
  15. Sanchez-Moreno C, Cao G, Ou B, Prior RL. Anthocy-anin and proanthocyanidin content in selected white and red wines. Oxygen radical absorbance capacity comparison with nontraditional wines obtained from highbush blueberry. Journal of Agricultural and Food Chemistry, 2003. 51(17):4889-4896. https://doi.org/10.1021/jf030081t
  16. Lee H-J, Do J-R, Kwon J-H, Kim H-K. [Physiological activities of extracts from different parts of Cudrania tri-pidata]. Journal of the Korean Society of Food Science and Nutrition, 2011. 40(7):942-948. https://doi.org/10.3746/jkfn.2011.40.7.942
  17. Slinkard K, Singleton VL. Total phenol analysis: automation and comparison with manual methods. American journal of enology and viticulture 28(1):49-55.
  18. Park H-M, Hong J-H (2014) [Effect of extraction methods on antioxidant activities of Mori ramulus]. Journal of the Korean Society of Food Science and Nutrition, 1977. 43(11):1709-1715. https://doi.org/10.3746/JKFN.2014.43.11.1709
  19. Blois MS. Antioxidant determinations by the use of a stable free radical. Nature, 1958.181(4617):1199-1200 https://doi.org/10.1038/1811199a0
  20. Lu Y, Yeap Foo L. Antioxidant and radical scavenging activities of polyphenols from apple pomace. Food Chemistry, 2000. 68(1):81-85. https://doi.org/10.1016/S0308-8146(99)00167-3
  21. Tsao R. Chemistry and Biochemistry of Dietary Polyphenols. Nutrients, 2010 2(12):1231-1246. https://doi.org/10.3390/nu2121231
  22. David J, Barreiros A, David J. Antioxidant Phenylpro-panoid Esters of Triterpenes from Dioclea lasiophylla. Pharmaceutical Biology, 2004. 42(1):36-38. https://doi.org/10.1080/13880200490505447
  23. Calderon-Montano JM, Burgos-Moron E, Perez-Guerrero C, Lopez-Lazaro M. A review on the dietary flavonoid kaempferol. Mini Rev Med Chem, 2011. 11(4):298-344. https://doi.org/10.2174/138955711795305335
  24. Khalil MI, Sulaiman SA. Te Potential Role of Honey and its Polyphenols in Preventing Heart Diseases: A Review. African Journal of Traditional, Complementary, and Alternative Medicines, 2010. 7(4):315-321.
  25. Kim HB, Kim JB, Kim SL. [Varietal Analysis and Quantifcation of Resveratrol in Mulberry Fruits[, 2005. 47(2): 51-55
  26. Kim H, Kim H, Jun B, Cha J, Kim H, Cho Y. [Analysis of ${\gamma}$-aminobutyric acid concentrations in Korean plants and mushrooms[. J Life Sci, 2011. 11:537-542