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      KCI등재 SCOPUS

      Bromobenzene으로 유도된 간 손상 마우스에 대한 Microcluster수의 효과 = Detoxification Effect of Microcluster-Water on Bromobenzene-Induced Liver Damaged Mice

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      https://www.riss.kr/link?id=A103699658

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      국문 초록 (Abstract)

      McW의 간 해독효과를 조사하였다. 실험군은 총 4개군 즉, 증류수급여군으로 대조군(DC)과 증류수를 3주간 섭취케 한 후 희생직전에 BB를 처리한 군(DB), McW 급여군으로는 McW 대조군(MC)과 McW를 3주...

      McW의 간 해독효과를 조사하였다. 실험군은 총 4개군 즉, 증류수급여군으로 대조군(DC)과 증류수를 3주간 섭취케 한 후 희생직전에 BB를 처리한 군(DB), McW 급여군으로는 McW 대조군(MC)과 McW를 3주간 섭취케 한 후 희생직전에 BB를 처리한 군(MB)의 4개 군으로 구분하였다. DC군과 MC군의 혈청 ALT 및 AST 활성은 뚜렷한 차이를 보이지 않았으나 MB군에서는 DB군에 비하여 유의하게 낮았다. 간 AH 활성은 모든 실험군에서 유의한 변동이 없었으나 GST 활성은 MC군이 DC군에 비하여, MB군이 DB군에 비하여 각각 높았다. 간 조직의 LPO 함량은 DC 및 MC군이 유사하였으며, DB 및 MB군 모두 DC군보다 유의하게 증가하였으나 그 증가율은 MB군이 DB군에 비하여 낮았다. McW의 전자공여능은 DW에 비하여 유의하게 높았다. 이상의 결과 McW는 간 해독효소의 일종인 GST의 활성을 증가시킴과 동시에 McW의 지속적인 섭취에 의한 항산화 작용에 의해 해독작용을 나타내는 것으로 생각되나 추후 계속적인 연구검토가 행해져야할 것이다.

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      다국어 초록 (Multilingual Abstract)

      This study was conducted to investigate the hepatic detoxification effect of microcluster-water (McW). Animal experiments were divided into 4 groups: distilled water intake group (DC), distilled water intake-bromobenzene treated group (DB), McW intake...

      This study was conducted to investigate the hepatic detoxification effect of microcluster-water (McW). Animal experiments were divided into 4 groups: distilled water intake group (DC), distilled water intake-bromobenzene treated group (DB), McW intake group (MC), and McW intake-bromobenzene treated group (MB). There were no significant differences in alanine aminotransferase and aspartate aminotransferase activities between DC and MC groups, but the activities in MB group were significantly (p<0.05) lower than those in DB group. No apparent changes of aniline hydrolase activity were shown in all experimental groups, while glutathione S-transferase activity in MC and MB groups was higher than that in DC and DB, respectively. The content of hepatic lipid peroxide in DC group was similar to that of MC group. In addition, the contents in DB and MB groups were significantly (p<0.05) increased than that of DC group. The increasing rate in MB group was lower than that of DB group. Also, the electron donating activity of McW was significantly (p<0.05) higher than that of distilled water. From these results, it could be suggested that McW has the possibility of having detoxification effect of bromobenzene induced hepatic injury by increasing glutathione S-transferase, which is known as a kind of hepatiic detoxification enzyme.

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      참고문헌 (Reference)

      1 Kwon SP., "Water" Doserchulphan Gonbubang 85-95, 1989

      2 Ricao AG, "Toxicological significance of covalently-bound residues" 1 : 157-161, 1984

      3 Ellman GL., "Tissue sulfhydryl group" 82 : 70-77, 1959

      4 Kang SW., "The water status in cell" The Botanical Soceity of Korea 51-57, 1985

      5 Mun SS., "The new evaluation basis of potable water" 35 : 24-28, 2002

      6 Habig WH, "The identification of glutathione S-transferase B with ligandin, a major binding protein of liver" 71 : 3879-3882, 1974

      7 Jakoby WB., "The glutathione S-transferases: a group of multifunctional detoxification proteins" 46 : 383-414, 1978

      8 Colacci A, "The covalent binding of bromobenzene with nucleic acids" 13 : 276-282, 1986

      9 Paek UH, "The characteristics of water quality of tap water and far-infrared rays mineral water" 9 : 423-428, 2000

      10 Peng RX, "The capacity of drug metabolism in Chinese fetal livers: Ⅱ. Metabolism of ethylmorphine, aminopyrine and aniline" 5 : 13-18, 1990

      1 Kwon SP., "Water" Doserchulphan Gonbubang 85-95, 1989

      2 Ricao AG, "Toxicological significance of covalently-bound residues" 1 : 157-161, 1984

      3 Ellman GL., "Tissue sulfhydryl group" 82 : 70-77, 1959

      4 Kang SW., "The water status in cell" The Botanical Soceity of Korea 51-57, 1985

      5 Mun SS., "The new evaluation basis of potable water" 35 : 24-28, 2002

      6 Habig WH, "The identification of glutathione S-transferase B with ligandin, a major binding protein of liver" 71 : 3879-3882, 1974

      7 Jakoby WB., "The glutathione S-transferases: a group of multifunctional detoxification proteins" 46 : 383-414, 1978

      8 Colacci A, "The covalent binding of bromobenzene with nucleic acids" 13 : 276-282, 1986

      9 Paek UH, "The characteristics of water quality of tap water and far-infrared rays mineral water" 9 : 423-428, 2000

      10 Peng RX, "The capacity of drug metabolism in Chinese fetal livers: Ⅱ. Metabolism of ethylmorphine, aminopyrine and aniline" 5 : 13-18, 1990

      11 Zanelli U, "Stabilization of cytochrome P4502E1 protein by ethanol in primary hamster hepatoicyte cultures" 14 : 69-77, 2000

      12 Zampaglion N, "Role of detoxifying enzymes in bromobenzene-induced liver necrosis" 187 : 218-227, 1973

      13 Lowry OH, "Protein measurement Folin phenol reagent" 193 : 265-275, 1951

      14 Lee SI, "Protective effect of diallyl disulfide on the bromoben zene-induced hepatotoxicity in mice" 26 : 185-192, 1990

      15 Zheng J, "Premercapturic acid metabolites of bromobenzene derived via its 2,3- and 3,4-oxide metabolites" 24 : 535-546, 1991

      16 Brodie BB, "Possible mechanism of liver necrosis caused by aromatic organic compounds" 68 : 160-164, 1971

      17 Martin JP, "Negative and positive assays of superoxide dismutase based on hematoxylin autoxidation" 255 : 329-336, 1987

      18 Kim TW., "Mystery of Water" Hongikdang 87-88, 1989

      19 Bidlack WR, "Multiple drug metabolism: p-nitroanisole reversal of acetone enhanced aniline hydroxylation" 31 : 311-317, 1982

      20 Hodgson E., "Metabolism of toxicants, In A Textbook of Modern Toxicology" Elservier Science Publishing Co 51-84, 1987

      21 Casini AF, "Lipid peroxidation and cellular damage in extrahepatic tissues of bromobenzene-intoxicated mice" 123 : 520-531, 1986

      22 Litwack G, "Ligandin: a hepatic protein which binds steroids, bilirubin, carcinogens, and a number of exogenous anions" 234 : 466-467, 1971

      23 Koen YM, "Identification of three protein targets for reactive metabolites of bromobenzene in rat liver cytosol" 13 : 1326-1335, 2000

      24 Zannoni VG, "Hepatic bromobenzene epoxidation and binding: prevention by ascorbyl palmitate" 1 : 193-204, 1982

      25 Pramyothin P, "Hepathotoxic effect of (+)usnic acid from Usnea siamensis Wainio in rats, isolated rat hepatocytes and isolated rat liver mitochondria" 90 : 381-387, 2004

      26 Casini AF, "Glutathione depletion, lipid peroxidation, and liver necrosis following bromobenzene and iodobenzene intoxication" 12 : 295-299, 1984

      27 Yanagihara T, "Electrolyzed hydrogen- saturated water for drinking use elicits an antioxidative effect: a feeding test with rats" 69 : 1985-1987, 2005

      28 Monks TJ, "Diffusion of reactive metabolites out of hepatocytes: Studies with bromobenzene" 228 : 393-399, 1984

      29 Wang RS, "Different change patterns of the isozymes of cytochrome P450 and glutathione S-transferases in chemically induced liver damage in rat" 37 : 440-448, 1999

      30 Cotran RS, "Cellular pathology Ⅰ, In Robbins Pathologic Basis of Diseases. 6th ed" WB Saunders 1-29, 1999

      31 Bambal RB, "Bromobenzene 3,4-oxide alkylates histidine and lysine side chains of rat liver proteins in vivo" 8 : 729-735, 1995

      32 Heijine WHM, "Boromobenzene-induced hapatotoxicity at the transcriptome level" 79 : 411-422, 2004

      33 Reid WD, "Bormobenzene metabolism and hepatic necrosis" 6 : 41-55, 1971

      34 Ohkawa H, "Assay for lipid peroxides in animal tissues by thiobarbituric acid reaction" 95 : 248-254, 1979

      35 Blois MS., "Antioxidant determination by the use of a stable free radical" 26 : 1199-2000, 1958

      36 Jong Cheol Park, "Anti-Hepatotoxic Effects of Rosa rugosa Root and Its Compound, Rosamultin, in Rats Intoxicated with Bromobenzene" 한국식품영양과학회 7 (7): 436-441, 2004

      37 Hwang SY., "A study on the mineral water in Europe partial area" 19 : 76-81, 2004

      38 松下和弘, "17O-NMR 分光法による水の狀態評價" 4 : 42-46, 1990

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2014-06-24 학회명변경 한글명 : 한국식품영양과학회지 -> 한국식품영양과학회
      영문명 : Journal of the Korean Society of Food Science and Nutrition -> The Korean Society of Food Science and Nutrition
      KCI등재
      2014-04-02 학회명변경 한글명 : 한국식품영양과학회 -> 한국식품영양과학회지
      영문명 : 미등록 -> Journal of the Korean Society of Food Science and Nutrition
      KCI등재
      2011-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2007-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2005-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2002-07-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2000-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.03 1.03 1.13
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      1.18 1.2 1.993 0.21
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