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      KCI등재 SCIE SCOPUS

      Elevated level of renal xanthine oxidase mRNA transcription after nephropathogenic infectious bronchitis virus infection in growing layers

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      https://www.riss.kr/link?id=A104770049

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      다국어 초록 (Multilingual Abstract)

      To assess relationships between xanthine oxidase (XOD) and nephropathogenic infectious bronchitis virus (NIBV) infection, 240 growing layers (35 days old) were randomly divided into two groups (infected and control) of 120 chickens each. Each chicken in the control and infected group was intranasally inoculated with 0.2 mL sterile physiological saline and virus, respectively, after which serum antioxidant parameters and renal XOD mRNA expression in growing layers were evaluated at 8, 15 and 22 days post-inoculation (dpi). The results showed that serum glutathione peroxidase and superoxide dismutase activities in the infected group were significantly lower than in the control group at 8 and 15 dpi (p < 0.01), while serum malondialdehyde concentrations were significantly higher (p < 0.01). The serum uric acid was significantly higher than that of the control group at 15 dpi (p < 0.01). In addition, the kidney mRNA transcript level and serum activity of XOD in the infected group was significantly higher than that of the control group at 8, 15 and 22 dpi (p < 0.05). The results indicated that NIBV infection could cause the increases of renal XOD gene transcription and serum XOD activity, leading to hyperuricemia and reduction of antioxidants in the body.
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      To assess relationships between xanthine oxidase (XOD) and nephropathogenic infectious bronchitis virus (NIBV) infection, 240 growing layers (35 days old) were randomly divided into two groups (infected and control) of 120 chickens each. Each chicken ...

      To assess relationships between xanthine oxidase (XOD) and nephropathogenic infectious bronchitis virus (NIBV) infection, 240 growing layers (35 days old) were randomly divided into two groups (infected and control) of 120 chickens each. Each chicken in the control and infected group was intranasally inoculated with 0.2 mL sterile physiological saline and virus, respectively, after which serum antioxidant parameters and renal XOD mRNA expression in growing layers were evaluated at 8, 15 and 22 days post-inoculation (dpi). The results showed that serum glutathione peroxidase and superoxide dismutase activities in the infected group were significantly lower than in the control group at 8 and 15 dpi (p < 0.01), while serum malondialdehyde concentrations were significantly higher (p < 0.01). The serum uric acid was significantly higher than that of the control group at 15 dpi (p < 0.01). In addition, the kidney mRNA transcript level and serum activity of XOD in the infected group was significantly higher than that of the control group at 8, 15 and 22 dpi (p < 0.05). The results indicated that NIBV infection could cause the increases of renal XOD gene transcription and serum XOD activity, leading to hyperuricemia and reduction of antioxidants in the body.

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      참고문헌 (Reference)

      1 Agarwal A, "Xanthine oxidoreductase: a journey from purine metabolism to cardiovascular excitation-contraction coupling" 31 : 264-280, 2011

      2 Vorbach C, "Xanthine oxidoreductase is central to the evolution and function of the innate immune system" 24 : 512-517, 2003

      3 Chambers DE, "Xanthine oxidase as a source of free radical damage in myocardial ischemia" 17 : 145-152, 1985

      4 Pfeffer KD, "Xanthine dehydrogenase and xanthine oxidase activity and gene expression in renal epithelial cells. Cytokine and steroid regulation" 153 : 1789-1797, 1994

      5 Taş S, "Vitamin B6 supplementation improves oxidative stress and enhances serum paraoxonase/arylesterase activities in streptozotocininduced diabetic rats" 2014 : 351598-, 2014

      6 Kang DH, "Uric acid and chronic renal disease:Possible implication of hyperuricemia on progression of renal disease" 25 : 43-49, 2005

      7 Sato A, "The structure of chicken liver xanthine dehydrogenase. cDNA cloning and the domain structure" 270 : 2818-2826, 1995

      8 Edwards NL, "The role of hyperuricemia and gout in kidney and cardiovascular disease" 75 (75): S13-S16, 2008

      9 Poss WB, "Regulation of xanthine dehydrogenase and xanthine oxidase activity by hypoxia" 270 : L941-L946, 1996

      10 Dupont GP, "Regulation of xanthine dehydrogenase and xanthine oxidase activity and gene expression in cultured rat pulmonary endothelial cells" 89 : 197-202, 1992

      1 Agarwal A, "Xanthine oxidoreductase: a journey from purine metabolism to cardiovascular excitation-contraction coupling" 31 : 264-280, 2011

      2 Vorbach C, "Xanthine oxidoreductase is central to the evolution and function of the innate immune system" 24 : 512-517, 2003

      3 Chambers DE, "Xanthine oxidase as a source of free radical damage in myocardial ischemia" 17 : 145-152, 1985

      4 Pfeffer KD, "Xanthine dehydrogenase and xanthine oxidase activity and gene expression in renal epithelial cells. Cytokine and steroid regulation" 153 : 1789-1797, 1994

      5 Taş S, "Vitamin B6 supplementation improves oxidative stress and enhances serum paraoxonase/arylesterase activities in streptozotocininduced diabetic rats" 2014 : 351598-, 2014

      6 Kang DH, "Uric acid and chronic renal disease:Possible implication of hyperuricemia on progression of renal disease" 25 : 43-49, 2005

      7 Sato A, "The structure of chicken liver xanthine dehydrogenase. cDNA cloning and the domain structure" 270 : 2818-2826, 1995

      8 Edwards NL, "The role of hyperuricemia and gout in kidney and cardiovascular disease" 75 (75): S13-S16, 2008

      9 Poss WB, "Regulation of xanthine dehydrogenase and xanthine oxidase activity by hypoxia" 270 : L941-L946, 1996

      10 Dupont GP, "Regulation of xanthine dehydrogenase and xanthine oxidase activity and gene expression in cultured rat pulmonary endothelial cells" 89 : 197-202, 1992

      11 Nath KA, "Reactive oxygen species and acute renal failure" 109 : 665-678, 2000

      12 Singh N, "Prevalence and haemato-biochemical studies on naturally occurring gout in Chhattisgarh" 1 (1): 9-11, 2013

      13 Naguib YM, "Pleurotus ostreatus opposes mitochondrial dysfunction and oxidative stress in acetaminophen-induced hepato-renal injury" 14 : 494-, 2014

      14 Ji J, "Phylogenetic distribution and predominant genotype of the avian infectious bronchitis virus in China during 2008-2009" 8 : 184-, 2011

      15 Reyazuddin M, "Oxidative stress and level of antioxidant enzymes in drug-naive schizophrenics" 56 : 344-349, 2014

      16 Beedkar SD, "Novel thiazolo-pyrazolyl derivatives as xanthine oxidase inhibitors and free radical scavengers" 50 : 947-956, 2012

      17 Ziegler AF, "Nephropathogenic infectious bronchitis in Pennsylvania chickens 1997-2000" 46 : 847-858, 2002

      18 Lee CW, "Nephropathogenesis of chickens experimentally infected with various strains of infectious bronchitis virus" 66 : 835-840, 2004

      19 Al-Hakeim HK, "Lack of correlation between non-labile iron parameters, total carbonyl and malondialdehyde in major thalassemia" 55 : 203-206, 2014

      20 Gaba A, "Isolation, identification and molecular characterization of IBV variant from out break of visceral gout in commercial broilers" 3 : 375-377, 2010

      21 Qian DH, "Isolation and characterization of a coronavirus from pigeons with pancreatitis" 67 : 1575-1579, 2006

      22 Peralta C, "Ischemic preconditioning: a defense mechanism against the reactive oxygen species generated after hepatic ischemia reperfusion" 73 : 1203-1211, 2002

      23 Okino CH, "Inflammatory and cell-mediated immune responses in the respiratory tract of chickens to infection with avian infectious bronchitis virus" 27 : 383-391, 2014

      24 Many A, "Hyperuricemia and xanthine oxidase in preeclampsia, revisited" 174 : 288-291, 1996

      25 Ejaz S, "Gout Induced by intoxication of sodium bicarbonate in Korean native broilers" 28 : 245-261, 2005

      26 Xie Q, "Epidemiology and immunoprotection of nephropathogenic avian infectious bronchitis virus in southern China" 8 : 484-, 2011

      27 Afanador G, "Effect of nephropathogenic infectious bronchitis viruses on renal function in young male broiler chickens" 35 : 445-456, 1994

      28 Wideman RF Jr, "Effect of dietary acidification on kidney damage induced in immature chickens by excess calcium and infectious bronchitis virus" 66 : 626-633, 1987

      29 Celik VK, "Determination of serum adenosine deaminase and xanthine oxidase levels in patients with crimean-congo hemorrhagic fever" 65 : 697-702, 2010

      30 Nemzer B, "Decrease of free radical concentrations in humans following consumption of a high antioxidant capacity natural product" 2 : 647-654, 2014

      31 Okamoto K, "Chemical nature and reaction mechanisms of the molybdenum cofactor of xanthine oxidoreductase" 19 : 2606-2614, 2013

      32 Asasi K, "Changes of several acute phase factors in broiler chickens in response to infectious bronchitis virus infection" 92 : 1989-1996, 2013

      33 Liu MD, "Changes of serum Tau, GFAP, TNF-α and malonaldehyde after blast-related traumatic brain injury" 17 : 317-322, 2014

      34 Reed LJ, "A simple method of estimating fifty per cent endpoints" 27 : 493-497, 1938

      35 Seifried HE, "A review of the interaction among dietary antioxidants and reactive oxygen species" 18 : 567-579, 2007

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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.08 0.11 0.76
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.61 0.51 0.245 0.05
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