Rat mitochondrial manganese superoxide dismutase: Amino acid positions involved in covalent modifications, activity, and heat stability
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A. Chambery | M. R. Ruocco | E. De Vendittis | I. Castellano | R. Cotugno | M. Masullo | E. Avvedimento | A. Di Maro | Andzelika Michniewicz | Francesca Cecere | G. Parlato | Alberto De Vendittis
[1] A. Chambery,et al. Glutathionylation of the iron superoxide dismutase from the psychrophilic eubacterium Pseudoalteromonas haloplanktis. , 2008, Biochimica et biophysica acta.
[2] S. Foote,et al. The cytoplasmic phosphoproteome of the Gram‐negative bacterium Campylobacter jejuni: Evidence for modification by unidentified protein kinases , 2007, Proteomics.
[3] E. Feldman,et al. SOD2 protects neurons from injury in cell culture and animal models of diabetic neuropathy , 2007, Experimental Neurology.
[4] J. Zweier,et al. Mitochondrial Complex II in the Post-ischemic Heart , 2007, Journal of Biological Chemistry.
[5] M. Rooman,et al. Mn/Fe superoxide dismutase interaction fingerprints and prediction of oligomerization and metal cofactor from sequence , 2007, Proteins.
[6] J. Zweier,et al. Site-specific S-glutathiolation of mitochondrial NADH ubiquinone reductase. , 2007, Biochemistry.
[7] B. Berk,et al. Glutathiolation Regulates Tumor Necrosis Factor-&agr;–Induced Caspase-3 Cleavage and Apoptosis: Key Role for Glutaredoxin in the Death Pathway , 2007, Circulation research.
[8] P. Cossart,et al. Control of Listeria Superoxide Dismutase by Phosphorylation* , 2006, Journal of Biological Chemistry.
[9] A. Chambery,et al. Psychrophilic superoxide dismutase from Pseudoalteromonas haloplanktis: biochemical characterization and identification of a highly reactive cysteine residue. , 2006, Biochimie.
[10] G. Georgiou,et al. The many faces of glutathione in bacteria. , 2006, Antioxidants & redox signaling.
[11] Irfan Rahman,et al. Redox modifications of protein-thiols: emerging roles in cell signaling. , 2006, Biochemical pharmacology.
[12] Frank A Witzmann,et al. Mitochondrial matrix phosphoproteome: effect of extra mitochondrial calcium. , 2006, Biochemistry.
[13] T. Hurd,et al. Glutathionylation of mitochondrial proteins. , 2005, Antioxidants & redox signaling.
[14] E. R. Taylor,et al. Glutaredoxin 2 Catalyzes the Reversible Oxidation and Glutathionylation of Mitochondrial Membrane Thiol Proteins , 2004, Journal of Biological Chemistry.
[15] D. Pimentel,et al. S-Glutathiolation by peroxynitrite activates SERCA during arterial relaxation by nitric oxide , 2004, Nature Medicine.
[16] R. Matthews,et al. Oxidative Stress Inactivates Cobalamin-Independent Methionine Synthase (MetE) in Escherichia coli , 2004, PLoS biology.
[17] E. De Vendittis,et al. The role of Tyr41 and His155 in the functional properties of superoxide dismutase from the archaeon Sulfolobus solfataricus. , 2004, Biochemistry.
[18] E. Tekle,et al. Stable and controllable RNA interference: Investigating the physiological function of glutathionylated actin , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[19] E. Avvedimento,et al. PKA-dependent binding of mRNA to the mitochondrial AKAP121 protein. , 2003, Journal of molecular biology.
[20] T. Finkel. Oxidant signals and oxidative stress. , 2003, Current opinion in cell biology.
[21] T. Mariani,et al. Superoxide dismutase multigene family: a comparison of the CuZn-SOD (SOD1), Mn-SOD (SOD2), and EC-SOD (SOD3) gene structures, evolution, and expression. , 2002, Free radical biology & medicine.
[22] L. Soulère,et al. Peroxynitrite-induced nitration of tyrosine-34 does not inhibit Escherichia coli iron superoxide dismutase , 2001 .
[23] J. Hescheler,et al. Reactive Oxygen Species as Intracellular Messengers During Cell Growth and Differentiation , 2001, Cellular Physiology and Biochemistry.
[24] M. Masullo,et al. Phenylmethanesulfonyl fluoride inactivates an archaeal superoxide dismutase by chemical modification of a specific tyrosine residue. Cloning, sequencing and expression of the gene coding for Sulfolobus solfataricus superoxide dismutase. , 2001, European journal of biochemistry.
[25] L. MacMillan-Crow,et al. Manganese superoxide dismutase in disease , 2001, Free radical research.
[26] J. Tainer,et al. Multiple replacements of glutamine 143 in human manganese superoxide dismutase: effects on structure, stability, and catalysis. , 2000, Biochemistry.
[27] Ze'ev Ronai,et al. Role of redox potential and reactive oxygen species in stress signaling , 1999, Oncogene.
[28] J. Thompson,et al. Tyrosine modifications and inactivation of active site manganese superoxide dismutase mutant (Y34F) by peroxynitrite. , 1999, Archives of biochemistry and biophysics.
[29] S. Al-Karadaghi,et al. Iron superoxide dismutase from the archaeon Sulfolobus solfataricus: analysis of structure and thermostability. , 1999, Journal of molecular biology.
[30] C. Epstein,et al. Mitochondrial disease in superoxide dismutase 2 mutant mice. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[31] K. Murayama,et al. Inactivation of Human Manganese-superoxide Dismutase by Peroxynitrite Is Caused by Exclusive Nitration of Tyrosine 34 to 3-Nitrotyrosine* , 1998, The Journal of Biological Chemistry.
[32] G. Borgstahl,et al. Crystal structure of Y34F mutant human mitochondrial manganese superoxide dismutase and the functional role of tyrosine 34. , 1998, Biochemistry.
[33] J. Thompson,et al. Peroxynitrite-mediated inactivation of manganese superoxide dismutase involves nitration and oxidation of critical tyrosine residues. , 1998, Biochemistry.
[34] A. Dello Russo,et al. Iron superoxide dismutase from the archaeon Sulfolobus solfataricus: average hydrophobicity and amino acid weight are involved in the adaptation of proteins to extreme environments. , 1997, Biochimica et biophysica acta.
[35] A. F. Miller,et al. Mutation of tyrosine 34 to phenylalanine eliminates the active site pK of reduced iron-containing superoxide dismutase. , 1997, Biochemistry.
[36] J. Thompson,et al. Nitration and inactivation of manganese superoxide dismutase in chronic rejection of human renal allografts. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[37] M. Matzuk,et al. Neurodegeneration, myocardial injury, and perinatal death in mitochondrial superoxide dismutase-deficient mice. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[38] M. Boissinot,et al. Human mitochondrial manganese superoxide dismutase polymorphic variant Ile58Thr reduces activity by destabilizing the tetrameric interface. , 1996, Biochemistry.
[39] F. Polticelli,et al. Amino acid sequence of chicken Cu, Zn-containing superoxide dismutase and identification of glutathionyl adducts at exposed cysteine residues. , 1996, European journal of biochemistry.
[40] C. Epstein,et al. Dilated cardiomyopathy and neonatal lethality in mutant mice lacking manganese superoxide dismutase , 1995, Nature Genetics.
[41] D. Longo,et al. Overexpression of mitochondrial manganese superoxide dismutase promotes the survival of tumor cells exposed to interleukin‐1, tumor necrosis factor, selected anticancer drugs, and ionizing radiation , 1993, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[42] J. Crapo,et al. Human Mn-superoxide dismutase in pulmonary epithelial cells of transgenic mice confers protection from oxygen injury. , 1992, The Journal of biological chemistry.
[43] G. Borgstahl,et al. The structure of human mitochondrial manganese superoxide dismutase reveals a novel tetrameric interface of two 4-helix bundles , 1992, Cell.
[44] W. Dougall,et al. Multiple mRNA species generated by alternate polyadenylation from the rat manganese superoxide dismutase gene. , 1992, Nucleic acids research.
[45] Y. Ho,et al. Molecular structure of a functional rat gene for manganese-containing superoxide dismutase. , 1991, American journal of respiratory cell and molecular biology.
[46] N. Taniguchi,et al. Human liver manganese superoxide dismutase. Purification and crystallization, subunit association and sulfhydryl reactivity. , 1990, European journal of biochemistry.
[47] I. Fridovich. Superoxide dismutases: an adaptation to a paramagnetic gas , 1989 .
[48] J. Whitsett,et al. Synthesis and processing of the precursor for human mangano-superoxide dismutase. , 1989, Biochimica et biophysica acta.
[49] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.
[50] U. K. Laemmli,et al. Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4 , 1970, Nature.
[51] I. Fridovich,et al. Superoxide dismutase. An enzymic function for erythrocuprein (hemocuprein). , 1969, The Journal of biological chemistry.
[52] H. Forman,et al. Glutathione, stress responses, and redox signaling in lung inflammation. , 2005, Antioxidants & redox signaling.
[53] J. McCord,et al. Paradoxical effects of thiol reagents on Jurkat cells and a new thiol-sensitive mutant form of human mitochondrial superoxide dismutase. , 2003, Cancer research.
[54] A. Greener,et al. Site-directed mutagenesis using double-stranded plasmid DNA templates. , 1996, Methods in molecular biology.
[55] G Rotilio,et al. Aspects of the structure, function, and applications of superoxide dismutase. , 1987, CRC critical reviews in biochemistry.
[56] I. Fridovich. Superoxide and Superoxide Dismutases , 1977 .