Effect of Drying Method on Antioxidant Activity of Jiwhang (Rehmannia glutinosa)

  • Rhim, Jong-Whan (Department of Food Engineering, Mokpo National University) ;
  • Xi, Yang (Department of Food Engineering, Mokpo National University) ;
  • Jeong, Won-Chul (Department of Food Engineering, Mokpo National University) ;
  • Ham, Kyung-Sik (Department of Food Engineering, Mokpo National University) ;
  • Chung, Ha-Sook (Department of Food and Nutrition, Duksung Women's University) ;
  • Kim, Eun-Sil (Department of Food and Nutrition, Duksung Women's University)
  • Published : 2009.12.31

Abstract

Jiwhang (Rehmannia glutinosa), one of the most widely used medicinal herbs, was dried with various methods such as sun drying, hot air drying, vacuum drying, and freeze drying methods, and their effects on the antioxidant capacity in relation with the content of total phenolic compounds were studied with a steamed-and-dried rehmannia (sookjiwhang) for comparison. Generally, total phenolic contents decreased significantly by all of the drying treatments except the steamed-and-dried rehmannia, in which total phenolic contents increased 2.4 fold compared with fresh rehmannia. Content of verbascoside, a functional phenolic compound, was the highest in the freeze-dried rehmannia ($177.97{\pm}0.02\;{\mu}g/g$ d.m.) followed by vacuum-dried ($105.55{\pm}0.07\;{\mu}g/g$ d.m.), hot air-dried ($23.01{\pm}0.02\;{\mu}g/g$ d.m.), and sun-dried ($4.89{\pm}0.13\;{\mu}g/g$ d.m.) ones comparable to the fresh rehmannia ($80.15{\pm}1.26\;{\mu}g/g$ d.m.). Antioxidant capacity determined by both 2,2-diphenyl-1-picrylhydrazyl (DPPH) and 2,2'-azinobis (3-ethyl-benzthiazoline-6-sulphonic acid) (ABTS) methods agreed with the result of total phenolic contents, that is, the antioxidant capacity was the highest in the steamed-and-dried rehmannia followed by fresh rehmannia, vacuum-dried, hot air-dried, sun-dried, and freeze-dried ones. Conclusively, the total phenolic contents and antioxidant capacity of rehmannia were greatly affected by the drying methods used.

Keywords

References

  1. Zhang RX, Li MX, Jia ZP. Rehmannia glutinosa: Review of botany, chemistry, and pharmacology. J. Ethnopharmacol. 117: 199-214 (2008) https://doi.org/10.1016/j.jep.2008.02.018
  2. Brown D. Rehmanina. pp. 341-342. In: Encyclopedia of Herbs and Their Uses. The Royal Horticultural Society, London, UK (2002)
  3. Ou B, Huang D, Hampsch-Woodili M, Flanagan JA. When the East meets West: The relationship between yin-yang and antioxidationoxidation. FASEB J. 17: 127-129 (2003) https://doi.org/10.1096/fj.02-0527hyp
  4. Prior RL, Cao GH. Anaysis of botanical and dietary supplements for antioxidant capacity. J. AOAC Int. 83: 950-956 (2000)
  5. Oshio H, Naruse Y, Inouye H. Quantitative analysis of iridoid glycoside of Rehmmiae radix. Shoyakugaku Zassi 35: 291-294 (1984)
  6. Woo KS, Hwang IG, Song DS, Lee YR, Lee JS, Jeong HS. Changes in antioxidant activity of Rehmannia radix Libosch with heat treatment. Food Sci. Biotechnol. 17: 1387-1390 (2008)
  7. Kitagawa I, Fykuda Y, Taniyama T, Yashigawa M. Chemical studies on crude drug processing. X. On the constituents of Rehmanniae radix (4): Comparison of the constituents of various Rehmanniae radixes originating in China, Korea, and Japan. Jpn. J. Pharmacol. 115: 992-1003 (1995)
  8. Kubo M, Asano T, Matsuda H, Yutani S, Honda S. Studies on Rehmanniae radix. III. The relation between changes of constituents and improvable effects on hemorheology with the processing of roots of Rehmannia glutinosa. Jpn. J. Pharmacol. 116: 158-168 (1996)
  9. Du G, Li M, Ma F, Liang D. Antioxidant capacity and the relationship with polyphenol and vitamin C an Actinidia fruits. Food Chem. 113: 557-562 (2009) https://doi.org/10.1016/j.foodchem.2008.08.025
  10. Katalinic V, Milos M, Kulisic T, Jukic M. Screening of 70 medicinal plant extracts for antioxidant capacity and total phenols. Food Chem. 94: 550-557 (2006) https://doi.org/10.1016/j.foodchem.2004.12.004
  11. Nicoli MC, Anese M, Parpinel M. Influence of processing on the antioxidant properties of fruit and vegetables. Trends Food Sci. Tech. 10: 94-100 (1999) https://doi.org/10.1016/S0924-2244(99)00023-0
  12. Cho EJ, Piao XL, Jang MH, Baek SH, Kim HY, Kang KS, Kwon SW, Park JH. The effect of steaming on the free amino acid contents and antioxidant activity of Panax ginseng. Food Chem. 107: 876-882 (2008) https://doi.org/10.1016/j.foodchem.2007.09.007
  13. Cristina M, Anese M, Parpinel MT, Franceschi S, Lerici CR. Loss and/or formation of antioxidants during food processing and storage. Cancer Lett. 114: 71-74 (1997) https://doi.org/10.1016/S0304-3835(97)04628-4
  14. Paixao N, Perestrelo R, Marques JC, Camara JS. Relationship between antioxidant capacity and total phenolic content of red, rose, and white wines. Food Chem. 105: 204-214 (2007) https://doi.org/10.1016/j.foodchem.2007.04.017
  15. Zhou K, Yu L. Total phenolic contents and antioxidant properties of commonly consumed vegetables grown in Colorado. LWT - Food Sci. Technol. 39: 1155-1162 (2006) https://doi.org/10.1016/j.lwt.2005.07.015
  16. Thaipong K, Boonprakob U, Crosby K, Cisneros-Zevallos L, Byrne DH. Comparison of ABTS, DPPH, FRAP, and ORAC assays for estimating antioxidant activity from guava fruit extracts. J. Food Compos. Anal. 19: 669-675 (2006) https://doi.org/10.1016/j.jfca.2006.01.003
  17. Perez-Jimenez J, Saura-Calixto F. Effect of solvent and certain food constituents on different antioxidant capacity assays. Food Res. Int. 39: 791-800 (2006) https://doi.org/10.1016/j.foodres.2006.02.003
  18. Rhim JW, Kim JH, Jeong WC. Dehydration kinetics of rehmannia (Rehmannia glutinosa Loboschitz). Food Sci. Biotechnol. 16: 771-777 (2007)
  19. AOAC. Official Method of Analysis of AOAC Intl. 16th ed. Method 991.43. Association of Official Analytical Communities, Arlington, VA, USA (1995)
  20. Dewanto V, Wu X, Liu RH. Processed sweet corn has higher antioxidant activity. J. Agr. Food Chem. 50: 4949-4964 (2002)
  21. Blosis MS. Antioxidant determinations by the use of a stable free radical. Nature 26: 1199-1200 (1958)
  22. Jara PJ, Fulgencio SC. Effect of solvent and certain food constituents on different antioxidant capacity assays. Food Res. Int. 39: 791-800 (2006) https://doi.org/10.1016/j.foodres.2006.02.003
  23. Choi Y, Lee SM, Chun J, Lee J. Influence of heat treatment on the antioxidant activities and polyphenolic compounds of shiitake mushroom. Food Chem. 99: 381-387 (2006) https://doi.org/10.1016/j.foodchem.2005.08.004
  24. Sasaki H, Nishimura H, Morota T, Katsuhara T, Chin M, Mitsuhashi H. Norcarotenoid glycosides of Rehmannia glutinosa var. purpurea. Phytochemistry 30: 1639-1644 (1991) https://doi.org/10.1016/0031-9422(91)84224-G
  25. Sasaki H, Morota T, Nishimura H, Ogino T, Katsuhara T, Sugama K, Chin M, Mitsuhashi H. Norcarotenoids of Rehmannia glutinosa var. Hueichingensis. Phytochemistry 30: 1997-2001 (1991) https://doi.org/10.1016/0031-9422(91)85055-5
  26. Ryan D, Robards K. Phenolic compounds in olive. Analyst 123: 31R-44R (1998) https://doi.org/10.1039/a708920a
  27. Tepe B, Sokmen M, Akpulat HA, Sokmen A. Screening of the antioxidant potentials of six Salvia species from Turkey. Food Chem. 95: 200-204 (2006) https://doi.org/10.1016/j.foodchem.2004.12.031
  28. Lim HK, Yoo ES, Moon JY, Jeon YJ, Cho SK. Antioxidant activity of extracts from dangyuja (Citrus grandis Osbeck) fruits produced in Jeju island. Food Sci. Biotechnol. 15: 312-316 (2006)
  29. Velioglu YS, Mazza G, Gao L, Oomah BD. Antioxidant activity and total phenolics in selected fruits, vegetables, and grain products. J. Agr. Food Chem. 46: 4113-4117 (1998) https://doi.org/10.1021/jf9801973
  30. Woo KS, Song DS, Lee J, Lee HB, Jeong HS. Quality characteristics of Rehmannia radix Preparata with pre-soaking solvents. Korean J. Food Sci. Technol. 39: 289-294 (2007)
  31. Yang SJ, Woo KS, Yoo JS, Kang TS, Noh YH, Lee J, Jeong HS. Changes of Korean ginseng components with high temperature and pressure treatment. Korean J. Food Sci. Technol. 38: 521-523 (2006)
  32. Woo KS, Yoon HS, Lee J, Jeong HS. Characteristics and antioxidative activity of volatile compounds in heated garlic (Allium sativum). Food Sci. Biotechnol. 16: 822-827 (2007)
  33. Woo KS, Hwang IG, Kim TM, Kim DJ, Hong JT, Jeong HS. Changes in the antioxidant activity of onion (Allium cepa) extracts with heat treatment. Food Sci. Biotechnol. 16: 828-831 (2007)
  34. Dewanto V, Wu X, Adom KK, Liu RH. Thermal processing enhances the nutritional value of tomatoes by increasing total antioxidant activity. J. Agr. Food Chem. 50: 3010-3014 (2002) https://doi.org/10.1021/jf0115589
  35. Imeh U, Khokhar S. Distribution of conjugated and free phenols in fruits: Antioxidant activity and cultivar variations. J. Agr. Food Chem. 50: 6301-6306 (2002) https://doi.org/10.1021/jf020342j
  36. Bunea A, Andjelkovic M, Socaciu C, Bobis O, Neacsu M, Verhe R, Camp JV. Total and individual carotenoids and phenolic acids content in fresh, refrigerated, and processed spinach (Spinach oleracea L.). Food Chem. 108: 649-656 (2008) https://doi.org/10.1016/j.foodchem.2007.11.056
  37. Jimenez-Monreal AM, Garcia-Diz L, Martinez-Tome M, Mariscal M, Murcia MA. Influence of cooking methods on antioxidant activity of vegetables. J. Food Sci. 74: H97-H103 (2009) https://doi.org/10.1111/j.1750-3841.2009.01091.x
  38. Mensah AY, Sampson J, Houghton PJ, Hylands PJ, Westbrook J, Dunn M, Hughes MA, Cherry GW. Effects of Buddleja globosa leaf and its constituents relevant to wound healing. J. Ethnopharmacol. 77: 219-226 (2001) https://doi.org/10.1016/S0378-8741(01)00297-5
  39. Manzocco L, Calligaris S, Mastrocola D, Nicoli MC, Lerici CR. Review of non-enzymatic browning and antioxidant capacity in processed foods. Trends Food Sci. Tech. 11: 340-346 (2001) https://doi.org/10.1016/S0924-2244(01)00014-0