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The Antioxidant Effect of Hot Water Extract from the Dried Radish (Raphanus sativus L.) with Pressurized Roasting

가압볶음 무말랭이 열수 추출물의 항산화 효과

  • Song, Yeong-Bok (Sejeon Food Co. Ltd.) ;
  • Choi, Jeong-Sun (Dept. of Food Science & Nutrition, and Kimchi Research Institute, Pusan National University) ;
  • Lee, Ji-Eun (Dept. of Food Science & Nutrition, and Kimchi Research Institute, Pusan National University) ;
  • Noh, Jeong-Sook (Dept. of Food Science & Nutrition, and Kimchi Research Institute, Pusan National University) ;
  • Kim, Mi-Jeong (Dept. of Food and Nutrition, Silla University) ;
  • Cho, Eun-Ju (Dept. of Food Science & Nutrition, and Kimchi Research Institute, Pusan National University) ;
  • Song, Yeong-Ok (Dept. of Food Science & Nutrition, and Kimchi Research Institute, Pusan National University)
  • 송영복 ((주)세전식품연구소) ;
  • 최정선 (부산대학교 식품영양학과 및 김치연구소) ;
  • 이지은 (부산대학교 식품영양학과 및 김치연구소) ;
  • 노정숙 (부산대학교 식품영양학과 및 김치연구소) ;
  • 김미정 (신라대학교 식품영양학과) ;
  • 조은주 (부산대학교 식품영양학과 및 김치연구소) ;
  • 송영옥 (부산대학교 식품영양학과 및 김치연구소)
  • Received : 2010.05.04
  • Accepted : 2010.06.15
  • Published : 2010.08.31

Abstract

The antiradical property of hot water extract from dried radish (DR) or dried radish roasted with pressure (DRRP) was investigated in vitro and in LLC-PK1 cell system. The contents of total free amino acid and reducing sugar in DR were decreased by 72.86% and 3.17%, respectively, after pressurized roasting. In vitro test, $IC_{50}$ for DR and DRRP for DPPH radical scavenging activity were 646.70 and $135.45\;{\mu}g/mL$, 896.10 and $566.98\;{\mu}g/mL$ for superoxide anion radical, and 722.26 and $531.84\;{\mu}g/mL$ for hydroxy radical, respectively. The radical scavenging effects of DRRP was significantly greater than those for DR (p<0.001). These radical scavenging effects of DR and DRRP were confirmed in LLC-$PK_1$ at which oxidative stresses were induced by superoxide, nitric oxide and peroxynitrite generated in the treatment of pyrogallol, SNP, and SIN-1, respectively. Cell viability was increased in the presence of DR or DRRP, dose dependently (p<0.05), and TBARS formation was decreased. The protective effects of DRRP against oxidative damage in LLC-$PK_1$ were greater than those of DR at the same concentration tested (p<0.05). This superior antiradical activity of DRRP might be due to the products produced during the pressurized roasting in addition to the antioxidative compounds originally present in the radish. 5-hydroxyl methyl furfural (5-HMF) known as an intermediate product of the maillard reaction was detected in DRRP (0.57 mg/g), but not from DR. In conclusion, daily consumption of DRRP may prevent oxidative damage by retarding oxidative stress.

무말랭이 및 가압볶음 무말랭이 열수 추출물의 항산화 효과를 in vitro와 LLC-$PK_1$ cellular system에서 살펴보았다. 무말랭이 열수 추출물과 가압볶음 무말랭이 열수 추출물의 라디칼 소거능을 $IC_{50}$로 비교해 보았을 때 DPPH(646.70 vs $135.45\;{\mu}g/mL$), superoxide anion(896.10 vs $566.98\;{\mu}g/mL$) 및 hydroxyl radical(722.26 vs $531.84\;{\mu}g/mL$)에 대한 가압볶음 열수 추출물의 효과가 유의적으로 높은 것으로 나타났다(p<0.001). 이러한 유리기 소거효과는 LLC-PK1 cell에서 pyrogallol, SNP 및 SIN-1 처리로 superoxide, nitric oxide 및 peroxynitrite를 생성하여 산화스트레스를 유발한 다음 무말랭이 및 가압볶음 무말랭이 열수추출물을 첨가하였을때 농도 의존적으로 세포생존율이 증가하고, 과산화물 생성량이 감소하여 세포손상을 보호하는 효과가 관찰되었다. 가압볶음 무말랭이 열수 추출물의 산화손상에 대한 보호 효과는 무말랭이 열수추출물에 비해 모든 유리기에서 유의적으로 높았다(p<0.05). 이러한 무말랭이 열수추출물의 항산화효과는 무에 함유되어 있는 함황 물질, 유리아미노산, 배당체 등에 의한 것으로 생각되며 가압볶음 무말랭이 열수 추출물의 효과가 더 높은 이유는 무말랭이에 함유된 유효성분이가압볶음에 의해 증가되고 더불어 볶음과정 중에서 생성된 maillard 생성물의 항산화성 때문으로 생각된다. 무말랭이의 환원당 및 유리아미노산 함량은 볶음 후 유의적으로 감소하였으며(p<0.05), 이에 반해 maillard 생성물의 중간산물인 5-hydroxymethyl-2-furfural(5-HMF) 함량은 무말랭이 열수 추출물에서는 검출되지 않았던 것이 가압볶음 무말랭이 열수 추출물에서는 0.57 mg/g이 측정되었다. 본 연구 결과가압볶음 무말랭이 차의 섭취는 체내 유리기에 의한 산화적손상을 보호하는 효과가 높은 것으로 사료된다.

Keywords

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