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Effects of hot water extracts of roasted radish against renal oxidative stress induced by high-fat diet

고지방식사로 유도된 신장 산화스트레스를 개선하는 가압볶음 무말랭이 열수추출물 효과

  • Jeon, Yeonhui (Department of Food Science and Nutrition, Kimchi Research Institute, Pusan National University) ;
  • Kim, Mijeong (Department of Food Science and Nutrition, Kimchi Research Institute, Pusan National University) ;
  • Han, Seongkyung (Department of Food Science and Nutrition, Kimchi Research Institute, Pusan National University) ;
  • Song, Yeong-Bok (Sejeon Co., Ltd.) ;
  • Song, Yeong Ok (Department of Food Science and Nutrition, Kimchi Research Institute, Pusan National University)
  • 전연희 (부산대학교 식품영양학과 및 김치연구소) ;
  • 김미정 (부산대학교 식품영양학과 및 김치연구소) ;
  • 한성경 (부산대학교 식품영양학과 및 김치연구소) ;
  • 송영복 ((주)세전식품연구소) ;
  • 송영옥 (부산대학교 식품영양학과 및 김치연구소)
  • Received : 2016.09.24
  • Accepted : 2016.12.12
  • Published : 2017.04.30

Abstract

The antioxidant and anti-inflammatory effects of roasted dried radish (RDR) against renal oxidative stress were examined in high-fat diet (HFD)-fed mice. The HFD was prepared by adding lard to chow diet to provide 50% of the calories from fat. Hot water extracts of dried radish (DR) or RDR were administered orally to mice at 237 mg/kg bw/day, whereas distilled water was administered as a vehicle for 12 weeks. Compared to the control group, renal reactive oxygen species, peroxynitrite, and thiobarbituric acid reactive substance level in the DR or RDR group were significantly decreased, whereas the glutathione level was increased (p<0.05). Protein expressions of antioxidant factors such as nuclear factor erythroid 2-related factor-2, heme oxygenase-1, glutathione S-transferase, superoxide dismutase, catalase, and glutathione peroxidase were significantly increased in the DR and RDR groups; however, nuclear factor-kappa B expression was suppressed (p<0.05). These antioxidant and anti-inflammatory effects of RDR were found to be significantly greater than those of DR.

고지방식사를 섭취한 쥐의 신장에서 가압볶음 무말랭이 추출물의 산화방지, 항염증 효과를 확인하였다. 실험군은 chow diet와 증류수를 경구 투여하는 NOR group, 고지방식사와 증류수를 경구 투여하는 CON group, 고지방식사와 237 mg/kg bw/day농도의 DR과 RDR를 각각 경구 투여하는 DR group, RDR group으로 나누어 12주간 사육하였다. 신장의 산화스트레스 지표인 ROS, $ONOO^-$, 그리고 지방질과산화물의 농도를 확인한 결과 CON group이 NOR group에 비해 유의적으로 증가하였다. 반면 DR group과 RDR group에서 유의적으로 감소하였다. 체내 산화방지 지표인 글루타싸이온의 농도와 산화방지단백질의 발현은 DR group과 RDR group 모두 CON group에 비해 증가하였다. NF-${\kappa}B$ 발현은 CON group이 NOR group에 비해 증가하였으나 DR group과 RDR group은 모두 감소하였다. RDR group은 DR group에 비해 $ONOO^-$ 및 지방질과산화물 농도가 감소하였고 글루타싸이온 농도와 산화방지 관련 단백질 발현 중 Nrf2, HO-1, 카탈레이스, 그리고 GPx가 증가하였고 염증반응 전사인자인 NF-${\kappa}B$의 발현이 낮아졌다. RDR group의 산화스트레스 개선효과는 유의적으로 높은 것으로 확인되었다. 따라서 가압볶음무말랭이를 차로 제조하여 섭취할 때 고지방식사로 유도된 신장의 산화스트레스를 억제할 수 있을 것으로 사료되며, 그 효과는 무말랭이보다 높은 것으로 확인되었다.

Keywords

References

  1. Huang QL, Jin Y, Zhang LN, Cheung PCK, Kennedy JF. Structure, molecular size and antitumor activities of polysaccharides from Poria cocos mycelia produced in fermenter. Carbohyd. Polym. 70: 324-333 (2007) https://doi.org/10.1016/j.carbpol.2007.04.015
  2. Ruggiero C, Ehrenshaft M, Cleland E, Stadler K. High-fat diet induces an initial adaptation of mitochondrial bioenergetics in the kidney despite evident oxidative stress and mitochondrial ROS production. Am. J. Physiol-Endoc. Metab. 300: 1047-1058 (2011) https://doi.org/10.1152/ajpendo.00666.2010
  3. Kume S, Uzu T, Araki SI, Sugimoto T, Isshiki K, Chin-Kanasaki M, Haneda M. Role of altered renal lipid metabolism in the development of renal injury induced by a high-fat diet. J. Am. Soc. Nephrol. 18: 2715-2723 (2007) https://doi.org/10.1681/ASN.2007010089
  4. Muthulakshmi S, Saravanan R. Protective effects of azelaic acid against high-fat diet-induced oxidative stress in liver, kidney and heart of C57BL/6J mice. Mol. Cell. Biochem. 377: 23-33 (2013) https://doi.org/10.1007/s11010-013-1566-1
  5. Cai H, Harrison DG. Endothelial dysfunction in cardiovascular diseases: the role of oxidant stress. Circ. Res. 87: 840-844 (2000) https://doi.org/10.1161/01.RES.87.10.840
  6. Bidchol AM, Wilfred A, Abhijna P, Harish R. Free radical scavenging activity of aqueous and ethanolic extract of Brassica oleracea L. var. italica. Food Bioprocess Tech. 4: 1137-1143 (2011) https://doi.org/10.1007/s11947-009-0196-9
  7. Heo HJ, Kim DO, Choi SJ, Shin DH, Lee CY. Potent inhibitory effect of flavonoids in Scutellaria baicalensis on amyloid proteininduced neurotoxicity. J. Agr. Food Chem. 52: 4128-4132 (2004) https://doi.org/10.1021/jf049953x
  8. Golbidi S, Laher I. Antioxidant therapy in human endocrine disorders. Med. Sci. Monitor. 16: 9-24 (2010)
  9. Pahl HL. Activators and target genes of Rel/NF-$\kappa$B transcription factors. Oncogene 18: 6853-6866 (1999) https://doi.org/10.1038/sj.onc.1203239
  10. Nohl H and Jordan W. The mitochondrial site of superoxide formation. Biochem. Bioph. Res. Co. 138: 533-539 (1989)
  11. Bae R, Lee YK, Lee SK. Changes in nutrient levels of aqueous extracts from radish (Raphanus sativus L.) root during liquefaction by heat and non-heat processing. Kor. J. Hort. Sci. Technol. 30: 409-416 (2012)
  12. Jung DH. Biochemical activity of food. Seonjinmunwhasa, Seoul, Korea. pp. 72-74 (1998)
  13. Carlson DG, Daxenbichler ME, VanEtten CH, Hill CB, Williams PH. Glucosinolates in radish cultivars. J. Am. Soc. Hortic. Sci. 110: 634-638 (1985)
  14. Im JS, Lee EH, Lee JN, Kim KD, Kim HY, Kim MJ. Sulforaphane and total phenolics contents and antioxidant activity of radish according to genotype and cultivation location with different altitudes. Korean J. Hortic. Sci. 28: 335-342 (2010)
  15. Kim SH, Kim SS. Carbohydrate moieties of three radish peroxidases. Phytochemistry 42: 287-290 (1996) https://doi.org/10.1016/0031-9422(95)00928-0
  16. Katsuzaki H, Miyahara Y, Ota M, Imai K, Komiya T. Chemistry and antioxidative activity of hot water extract of Japanese radish (daikon). Biofactors 21: 211-214 (2004) https://doi.org/10.1002/biof.552210142
  17. Beevi SS, Mangamoori LN, Anabrolu N. Comparative activity against pathogenic bacteria of the root, stem, and leaf of Raphanus sativus grown in India. World J. Microb. Biot. 25: 465-473 (2009) https://doi.org/10.1007/s11274-008-9911-3
  18. Barillari J, Iori R, Papi A, Orlandi M, Bartolini G, Gabbanini S, Valgimigli L. Kaiware daikon (Raphanus sativus L.) extract: a naturally multipotent chemopreventive agent. J. Agr. Food Chem. 56: 7823-7830 (2008) https://doi.org/10.1021/jf8011213
  19. Shon YH, Suh JI, Park IK, Hwang CW, Kim CH, Nam KS. Inhibitory effect of radish on gastric cell toxicity and interleukin- 8 production induced by Helicobacter pylori. J. Life Sci. 15: 595-599 (2005) https://doi.org/10.5352/JLS.2005.15.4.595
  20. Nakamura Y, Iwahashi T, Tanaka A, Koutani J, Matsuo T, Okamoto, S, Ohtsuki K. 4-(Methylthio)-3-butenyl isothiocyanate, a principal antimutagen in daikon (Raphanus sativus; Japanese white radish). J. Agr. Food Chem. 49: 5755-5760 (2001) https://doi.org/10.1021/jf0108415
  21. HY, Kang NI, Lee HK, Jang KY, Park JW, Park BH. Sulforaphane protects kidneys against ischemia-reperfusion injury through induction of the Nrf2-dependent phase 2 enzyme. Biochem. Pharmacol. 75: 2214-2223 (2008) https://doi.org/10.1016/j.bcp.2008.02.029
  22. Song YB, Choi JS, Lee JE, Noh JS, Kim MJ, Cho EJ, Song YO. The antioxidant effect of hot water extract from the dried radish (Raphanus sativus L.) with pressurized roasting. J. Korean Soc. Food Sci. Nutr. 39: 1179-1186 (2010) https://doi.org/10.3746/jkfn.2010.39.8.1179
  23. Chung HS, Kim JK, Youn KS. Effects of roasting temperature on phycochemical properties of Job's tears (Coix lachryma jobi L. var ma-yeun) powder and extracts. Korean J. Food Preserv. 13: 477-482 (2006)
  24. Ko JY, Woo KS, Song SB, Seo HI, Kim HY, Kim JI Kim JI, Lee JS, Jung TW, Kim KY, Kwak DY, Oh IS. Physicochemical characteristics of sorghum tea according to milling type and panfried time. J. Korean Soc. Food Sci. Nutr. 41: 1546-1553 (2012) https://doi.org/10.3746/jkfn.2012.41.11.1546
  25. Lee MH, Cho JH, Kim BK. Effect of roasting conditions on the antioxidant activities of cassia tora L. Korean J. Food Sci. Technol. 45: 657-660 (2013) https://doi.org/10.9721/KJFST.2013.45.5.657
  26. Yu EM, Min SH. Biological activity of Korean dandelion (Taraxacum coreanum) extracts and preparation of Korean dandelion tea by roasting time. Korean J. Food Cook. Sci. 31: 581-587 (2015) https://doi.org/10.9724/kfcs.2015.31.5.581
  27. Kang SA, Jang KH, Lee JE, Ahn DK, Park SK. Differences of hematopoietic effects of Angelica gigas, A. sinensis and A. acutiloba extract on cyclophosphamide induced anemic rats. Korean J. Food Sci. Technol. 35: 1204-1208 (2003)
  28. Mun YJ, Kim J, Lim NY, Lee SY, Seop G, Hwang CY, Woo WH. Inhibitory effect on melanogenesis of Radix glycyrrhizae water extract. Korean J. Oriental Physiology & Pathology 16: 1230-1235 (2002)
  29. Ohkawa H, Ohishi N, Yagi K. Assay for lipid peroxides in animal tissues by thiobarbituric acid reaction. Anal. Biochem. 95: 351-358 (1979) https://doi.org/10.1016/0003-2697(79)90738-3
  30. Ellman MA. A spectrophotometric method for determination of reduced glutathione in tissues. Anal. Biochem. 74: 214-226 (1959)
  31. Ali SF, Lebel CP, Bondy SC. Reactive oxygen species formation as a biomaker of methylmercury and trimethyltin neurotoxicity. Neurotoxicology 13: 637-648 (1991)
  32. Kooy NW, Royall JA, Ischiropoulos H, Beckman JS. Peroxynitrite- mediated oxidation of dihydrorhodamine 123. Free Radical Bio. Med. 16: 149-156 (1994) https://doi.org/10.1016/0891-5849(94)90138-4
  33. Decleves AE, Zolkipli Z, Satriano J, Wang L, Nakayama T, Rogac M, Sharma K. Regulation of lipid accumulation by AMKactivated kinase in high fat diet-induced kidney injury. Kidney Int. 85: 611-623 (2014) https://doi.org/10.1038/ki.2013.462
  34. Folmer V, Soares JC, Gabriel D, Rocha JB. A high fat diet inhibits ${\delta}$-aminolevulinate dehydratase and increases lipid peroxidation in mice (Mus musculus). J. Nutr. 133: 2165-2170 (2003) https://doi.org/10.1093/jn/133.7.2165
  35. SalahAbbes JB, Abbes S, Ouanes Z, Houas Z, AbdelWahhab MA, Bacha H, Oueslati R. Tunisian radish extract (Raphanus sativus) enhances the antioxidant status and protects against oxidative stress induced by zearalenone in Balb/c mice. J. Appl. Toxicol. 28: 6-14 (2008) https://doi.org/10.1002/jat.1240
  36. Yoon HY, Kang NI, Lee HK, Jang KY, Park JW, Park BH. Sulforaphane protects kidneys against ischemia-reperfusion injury through induction of the Nrf2-dependent phase 2 enzyme. Biochem. Pharmacol. 75: 2214-2223 (2008) https://doi.org/10.1016/j.bcp.2008.02.029
  37. Vitaglione P, Morisco F, Mazzone G, Amoruso DC, Ribecco M T, Romano A, D'Argenio G. Coffee reduces liver damage in a rat model of steatohepatitis: the underlying mechanisms and the role of polyphenols and melanoidins. Hepatology 52: 1652-1661 (2010) https://doi.org/10.1002/hep.23902
  38. Omwamba M, Li F, Sun G, Hu Q. Antioxidant effect of roasted barley (Hordeum vulgare L.) grain extract towards oxidative stress in vitro and in vivo. Food Nutr. Sci. 4: 139-146 (2013) https://doi.org/10.4236/fns.2013.48A017
  39. Kim J, Cha YN, Surh YJ. A protective role of nuclear factorerythroid 2-related factor-2 (Nrf2) in inflammatory disorders. Mutat. Res. 690: 12-23 (2010) https://doi.org/10.1016/j.mrfmmm.2009.09.007
  40. Wagner AE, BoeschSaadatmandi C, Dose J, Schultheiss G, Rimbach G. Antiinflammatory potential of allylisothiocyanate-role of Nrf2, NF${\kappa}$B and microRNA155. J. Cell. Mol. Med. 16: 836-843 (2012) https://doi.org/10.1111/j.1582-4934.2011.01367.x