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      KCI등재 SCIE SCOPUS

      Cloning and Characterization of Filamentous Fungal S-Nitrosoglutathione Reductase from Aspergillus nidulans = Cloning and Characterization of Filamentous Fungal S-Nitrosoglutathione Reductase from Aspergillus nidulans

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      https://www.riss.kr/link?id=A101896852

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      다국어 초록 (Multilingual Abstract)

      S-Nitrosoglutathione reductase (GSNOR) metabolizes S-nitrosoglutathione (GSNO) and has been shown to play important roles in regulating cellular signaling and formulating host defense by modulating intracellular nitric oxide levels. The enzyme has bee...

      S-Nitrosoglutathione reductase (GSNOR) metabolizes S-nitrosoglutathione (GSNO) and has been shown to play important roles in regulating cellular signaling and formulating host defense by modulating intracellular nitric oxide levels. The enzyme has been found in bacterial, yeast, mushroom, plant, and mammalian cells. However, to date, there is still no evidence of its occurrence in filamentous fungi. In this study, we cloned and investigated a GSNOR-like enzyme from the filamentous fungus Aspergillus nidulans. The enzyme occurred in native form as a homodimer and exhibited low thermal stability. GSNO was an ideal substrate for the enzyme. The apparent Km and kcat values were 0.55 mM and 34,100 min-1, respectively. Substrate binding sites and catalytic center amino acid residues based on those from known GSNORs were conserved in this enzyme, and the corresponding roles were verified using site-directed mutagenesis. Therefore, we demonstrated the presence of GSNOR in a filamentous fungus for the first time.

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      참고문헌 (Reference)

      1 Trujillo M, "Xanthine oxidase-mediated decomposition of S-nitrosothiols" 273 : 7828-7834, 1998

      2 Myers PR, "Vasorelaxant properties of the endothelium-derived relaxing factor more closely resemble S-nitrosocysteine than nitric oxide" 345 : 161-163, 1990

      3 Hromatka BS, "Transcriptional response of Candida albicans to nitric oxide and the role of the YHB1 gene in nitrosative stress and virulence" 16 : 4814-4826, 2005

      4 Sengupta R, "Thioredoxin catalyzes the denitrosation of low-molecular mass and protein S-nitrosothiols" 46 : 8472-8483, 2007

      5 Stoyanovsky DA, "Thioredoxin and lipoic acid catalyze the denitrosation of low molecular weight and protein S-nitrosothiols" 127 : 15815-15823, 2005

      6 Veech RL, "The time-course of the effects of ethanol on the redox and phosphorylation states of rat liver" 127 : 387-397, 1972

      7 Burney S, "The chemistry of DNA damage from nitric oxide and peroxynitrite" 424 : 37-49, 1999

      8 Kubienova L, "Structural and functional characterization of a plant S-nitrosoglutathione reductase from Solanum lycopersicum" 95 : 889-902, 2013

      9 Goretski J, "Steady-state nitric oxide concentrations during denitrification" 265 : 11535-11538, 1990

      10 Hou Y, "Seleno compounds and glutathione peroxidase catalyzed decomposition of Snitrosothiols" 228 : 88-93, 1996

      1 Trujillo M, "Xanthine oxidase-mediated decomposition of S-nitrosothiols" 273 : 7828-7834, 1998

      2 Myers PR, "Vasorelaxant properties of the endothelium-derived relaxing factor more closely resemble S-nitrosocysteine than nitric oxide" 345 : 161-163, 1990

      3 Hromatka BS, "Transcriptional response of Candida albicans to nitric oxide and the role of the YHB1 gene in nitrosative stress and virulence" 16 : 4814-4826, 2005

      4 Sengupta R, "Thioredoxin catalyzes the denitrosation of low-molecular mass and protein S-nitrosothiols" 46 : 8472-8483, 2007

      5 Stoyanovsky DA, "Thioredoxin and lipoic acid catalyze the denitrosation of low molecular weight and protein S-nitrosothiols" 127 : 15815-15823, 2005

      6 Veech RL, "The time-course of the effects of ethanol on the redox and phosphorylation states of rat liver" 127 : 387-397, 1972

      7 Burney S, "The chemistry of DNA damage from nitric oxide and peroxynitrite" 424 : 37-49, 1999

      8 Kubienova L, "Structural and functional characterization of a plant S-nitrosoglutathione reductase from Solanum lycopersicum" 95 : 889-902, 2013

      9 Goretski J, "Steady-state nitric oxide concentrations during denitrification" 265 : 11535-11538, 1990

      10 Hou Y, "Seleno compounds and glutathione peroxidase catalyzed decomposition of Snitrosothiols" 228 : 88-93, 1996

      11 Xu S, "S-Nitrosoglutathione reductases are low-copy number, cysteine-rich proteins in plants that control multiple developmental and defense responses in Arabidopsis" 4 : 430-, 2013

      12 Fernandez MR, "S-Nitrosoglutathione reductase activity of human and yeast glutathione-dependent formaldehyde dehydrogenase and its nuclear and cytoplasmic localisation" 60 : 1013-1018, 2003

      13 Jensen DE, "S-Nitrosoglutathione is a substrate for rat alcohol dehydrogenase class III isoenzyme" 331 : 659-668, 1998

      14 Comtois SL, "Role of the thioredoxin system and the thiol-peroxidases Tpx and Bcp in mediating resistance to oxidative and nitrosative stress in Helicobacter pylori" 149 : 121-129, 2003

      15 Benhar M, "Regulated protein denitrosylation by cytosolic and mitochondrial thioredoxins" 320 : 1050-1054, 2008

      16 Staab CA, "Reduction of Snitrosoglutathione by alcohol dehydrogenase 3 is facilitated by substrate alcohols via direct cofactor recycling and leads to GSH-controlled formation of glutathione transferase inhibitors" 413 : 493-504, 2008

      17 Stamler JS, "Redox signaling: nitrosylation and related target interactions of nitric oxide" 78 : 931-936, 1994

      18 Peng XM, "Recent developments in azole compounds as antibacterial and antifungal agents" 13 : 1963-2010, 2013

      19 Benhar M, "Protein denitrosylation: enzymatic mechanisms and cellular functions" 10 : 721-732, 2009

      20 Hess DT, "Protein S-nitrosylation: purview and parameters" 6 : 150-166, 2005

      21 Moncada S, "Nitric oxide:physiology, pathophysiology, and pharmacology" 43 : 109-142, 1991

      22 Arasimowicz-Jelonek M, "Nitric oxide: an effective weapon of the plant or the pathogen" 15 : 406-416, 2014

      23 Marletta MA, "Nitric oxide synthase: function and mechanism" 338 : 281-284, 1993

      24 Zhou S, "NO-inducible nitrosothionein mediates NO removal in tandem with thioredoxin" 9 : 657-663, 2013

      25 Ken CF, "Modulation of nitrosative stress via glutathione-dependent formaldehyde dehydrogenase and S-nitrosoglutathione reductase" 15 : 14166-14179, 2014

      26 Sanghani PC, "Human glutathione-dependent formaldehyde dehydrogenase. Structures of apo, binary, and inhibitory ternary complexes" 41 : 10778-10786, 2002

      27 Bateman RL, "Human carbonyl reductase 1 is an S-nitrosoglutathione reductase" 283 : 35756-35762, 2008

      28 Zhou S, "Heme-biosynthetic porphobilinogen deaminase protects Aspergillus nidulans from nitrosative stress" 78 : 103-109, 2012

      29 Attarian R, "Glutathione disulfide and S-nitrosoglutathione detoxification by Mycobacterium tuberculosis thioredoxin system" 583 : 3215-3220, 2009

      30 Zhou S, "Functional analysis and subcellular location of two flavohemoglobins from Aspergillus oryzae" 48 : 200-207, 2011

      31 Justino MC, "FrxA is an S-nitrosoglutathione reductase enzyme that contributes to Helicobacter pylori pathogenicity" 281 : 4495-4505, 2014

      32 Jourd’heuil D, "Effect of superoxide dismutase on the stability of S-nitrosothiols" 361 : 323-330, 1999

      33 Crotty JW, "Crystal structures and kinetics of Snitrosoglutathione reductase from Arabidopsis thaliana and Homo sapiens" The University of Arizona 2009

      34 Zhou S, "Cloning and characterization of two flavohemoglobins from Aspergillus oryzae" 381 : 7-11, 2009

      35 Wink DA, "Chemical biology of nitric oxide: insights into regulatory, cytotoxic, and cytoprotective mechanisms of nitric oxide" 25 : 434-456, 1998

      36 Sliskovic I, "Characterization of the S-denitrosation activity of protein disulfide isomerase" 280 : 8733-8741, 2005

      37 Sudhamsu J, "Bacterial nitric oxide synthases:what are they good for" 17 : 212-218, 2009

      38 Sakamoto A, "Arabidopsis glutathione-dependent formaldehyde dehydrogenase is an S-nitrosoglutathione reductase" 515 : 20-24, 2002

      39 Liu L, "A metabolic enzyme for S-nitrosothiol conserved from bacteria to humans" 410 : 490-494, 2001

      40 Foster MW, "A genetic analysis of nitrosative stress" 48 : 792-799, 2009

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