Activation of superoxide dismutases: putting the metal to the pedal.
暂无分享,去创建一个
[1] T. O’Halloran,et al. Posttranslational modifications in Cu,Zn-superoxide dismutase and mutations associated with amyotrophic lateral sclerosis. , 2006, Antioxidants & redox signaling.
[2] E. Bigio,et al. Conversion to the amyotrophic lateral sclerosis phenotype is associated with intermolecular linked insoluble aggregates of SOD1 in mitochondria. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[3] T. Siddique,et al. Disulfide cross-linked protein represents a significant fraction of ALS-associated Cu, Zn-superoxide dismutase aggregates in spinal cords of model mice. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[4] D. Winge,et al. The effects of mitochondrial iron homeostasis on cofactor specificity of superoxide dismutase 2 , 2006, The EMBO journal.
[5] P. Andersen,et al. Disulphide-reduced superoxide dismutase-1 in CNS of transgenic amyotrophic lateral sclerosis models. , 2006, Brain : a journal of neurology.
[6] M. Ushio-Fukai,et al. Essential role for the Menkes ATPase in activation of extracellular superoxide dismutase: implication for vascular oxidative stress , 2006, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[7] D. Borchelt,et al. Mapping superoxide dismutase 1 domains of non‐native interaction: roles of intra‐ and intermolecular disulfide bonding in aggregation , 2006, Journal of neurochemistry.
[8] J. W. Whittaker,et al. Kinetic analysis of the metal binding mechanism of Escherichia coli manganese superoxide dismutase. , 2006, Biophysical journal.
[9] L. T. Jensen,et al. Activation of CuZn Superoxide Dismutases from Caenorhabditis elegans Does Not Require the Copper Chaperone CCS* , 2005, Journal of Biological Chemistry.
[10] N. Robinson,et al. Understanding how cells allocate metals using metal sensors and metallochaperones. , 2005, Accounts of chemical research.
[11] Bryan F. Shaw,et al. Destabilization of apoprotein is insufficient to explain Cu,Zn-superoxide dismutase-linked ALS pathogenesis. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[12] E. Luk,et al. Manganese Activation of Superoxide Dismutase 2 in the Mitochondria of Saccharomyces cerevisiae* , 2005, Journal of Biological Chemistry.
[13] J. Valentine,et al. Copper-zinc superoxide dismutase and amyotrophic lateral sclerosis. , 2005, Annual review of biochemistry.
[14] S. Werner,et al. Heterozygous deficiency of manganese superoxide dismutase results in severe lipid peroxidation and spontaneous apoptosis in murine myocardium in vivo. , 2005, Free radical biology & medicine.
[15] E. Baumgart-Vogt,et al. Peroxiredoxins, oxidative stress, and cell proliferation. , 2005, Antioxidants & redox signaling.
[16] T. O’Halloran,et al. Amyotrophic Lateral Sclerosis Mutations Have the Greatest Destabilizing Effect on the Apo- and Reduced Form of SOD1, Leading to Unfolding and Oxidative Aggregation* , 2005, Journal of Biological Chemistry.
[17] D. Harrison,et al. Role of Antioxidant-1 in Extracellular Superoxide Dismutase Function and Expression , 2005, Circulation research.
[18] M. Beal,et al. Mutant Superoxide Dismutase 1 Forms Aggregates in the Brain Mitochondrial Matrix of Amyotrophic Lateral Sclerosis Mice , 2005, The Journal of Neuroscience.
[19] D. Richardson,et al. Iron trafficking in the mitochondrion: novel pathways revealed by disease. , 2005, Blood.
[20] C. Epstein,et al. CuZnSOD deficiency leads to persistent and widespread oxidative damage and hepatocarcinogenesis later in life , 2005, Oncogene.
[21] Borries Demeler,et al. Dissociation of Human Copper-Zinc Superoxide Dismutase Dimers Using Chaotrope and Reductant , 2004, Journal of Biological Chemistry.
[22] I. Bertini,et al. The Unusually Stable Quaternary Structure of Human Cu,Zn-Superoxide Dismutase 1 Is Controlled by Both Metal Occupancy and Disulfide Status* , 2004, Journal of Biological Chemistry.
[23] Nikolay V Dokholyan,et al. The rate and equilibrium constants for a multistep reaction sequence for the aggregation of superoxide dismutase in amyotrophic lateral sclerosis. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[24] D. Kurtz. Microbial detoxification of superoxide: the non-heme iron reductive paradigm for combating oxidative stress. , 2004, Accounts of chemical research.
[25] O. Carugo,et al. Unique Features of the sodC-encoded Superoxide Dismutase from Mycobacterium tuberculosis, a Fully Functional Copper-containing Enzyme Lacking Zinc in the Active Site* , 2004, Journal of Biological Chemistry.
[26] T. O’Halloran,et al. Oxygen‐induced maturation of SOD1: a key role for disulfide formation by the copper chaperone CCS , 2004, The EMBO journal.
[27] Ole Gredal,et al. Toxicity of Familial ALS-Linked SOD1 Mutants from Selective Recruitment to Spinal Mitochondria , 2004, Neuron.
[28] John A Tainer,et al. Nickel superoxide dismutase structure and mechanism. , 2004, Biochemistry.
[29] J. W. Whittaker,et al. Calorimetric Studies on the Tight Binding Metal Interactions of Escherichia coli Manganese Superoxide Dismutase* , 2004, Journal of Biological Chemistry.
[30] L. Bruijn,et al. Unraveling the mechanisms involved in motor neuron degeneration in ALS. , 2004, Annual review of neuroscience.
[31] Timothy A. Jackson,et al. Combined spectroscopic/computational studies on Fe- and Mn-dependent superoxide dismutases: insights into second-sphere tuning of active site properties. , 2004, Accounts of chemical research.
[32] J. Valentine,et al. Mechanisms for activating Cu- and Zn-containing superoxide dismutase in the absence of the CCS Cu chaperone. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[33] T. O’Halloran,et al. Oxygen and the copper chaperone CCS regulate posttranslational activation of Cu,Zn superoxide dismutase. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[34] D. Winge,et al. Yeast Contain a Non-proteinaceous Pool of Copper in the Mitochondrial Matrix* , 2004, Journal of Biological Chemistry.
[35] A. C. May,et al. Specificity and Phenetic Relationships of Iron- and Manganese-containing Superoxide Dismutases on the Basis of Structure and Sequence Comparisons* , 2004, Journal of Biological Chemistry.
[36] J. Reusch,et al. Role for Oxidative Stress in the Regeneration of Islet Beta Cells? , 2004, Journal of Investigative Medicine.
[37] C. Epstein,et al. Life-long reduction in MnSOD activity results in increased DNA damage and higher incidence of cancer but does not accelerate aging. , 2003, Physiological genomics.
[38] S. Kardinahl,et al. Iron superoxide dismutases: structure and function of an archaic enzyme. , 2003, Biochemical Society transactions.
[39] J. W. Whittaker. The irony of manganese superoxide dismutase. , 2003, Biochemical Society transactions.
[40] A. Paul,et al. A Sod2 null mutation confers severely reduced adult life span in Drosophila. , 2003, Genetics.
[41] J. Crapo,et al. The dual nature of human extracellular superoxide dismutase: One sequence and two structures , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[42] Y. Ho,et al. Alcohol‐induced liver injury in mice lacking Cu, Zn‐superoxide dismutase , 2003, Hepatology.
[43] A. Mondragón,et al. Molecular Basis of Metal-Ion Selectivity and Zeptomolar Sensitivity by CueR , 2003, Science.
[44] J. Gitlin,et al. Mechanisms of Biosynthesis of Mammalian Copper/Zinc Superoxide Dismutase* , 2003, Journal of Biological Chemistry.
[45] N. Brown‐Peterson,et al. Replacement of a cytosolic copper/zinc superoxide dismutase by a novel cytosolic manganese superoxide dismutase in crustaceans that use copper (haemocyanin) for oxygen transport. , 2003, The Biochemical journal.
[46] V. Culotta,et al. Manganese activation of superoxide dismutase 2 in Saccharomyces cerevisiae requires MTM1, a member of the mitochondrial carrier family , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[47] T. O’Halloran,et al. Factors Controlling the Uptake of Yeast Copper/Zinc Superoxide Dismutase into Mitochondria* , 2003, Journal of Biological Chemistry.
[48] Thomas V. O'Halloran,et al. Transition Metal Speciation in the Cell: Insights from the Chemistry of Metal Ion Receptors , 2003, Science.
[49] M. Savolainen,et al. The signal sequence polymorphism of the MnSOD gene is associated with the degree of carotid atherosclerosis. , 2003, Atherosclerosis.
[50] E. Avvedimento,et al. PKA-dependent binding of mRNA to the mitochondrial AKAP121 protein. , 2003, Journal of molecular biology.
[51] J. Valentine,et al. Misfolded CuZnSOD and amyotrophic lateral sclerosis , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[52] A. Hilliker,et al. RNA interference-mediated silencing of Sod2 in Drosophila leads to early adult-onset mortality and elevated endogenous oxidative stress , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[53] L. Barbeito,et al. CCS knockout mice establish an alternative source of copper for SOD in ALS. , 2002, Free radical biology & medicine.
[54] V. Culotta,et al. Copper Chaperones: Personal Escorts for Metal Ions , 2002, Journal of bioenergetics and biomembranes.
[55] M. Beal,et al. Mutated Human SOD1 Causes Dysfunction of Oxidative Phosphorylation in Mitochondria of Transgenic Mice* , 2002, The Journal of Biological Chemistry.
[56] I. Fridovich,et al. Amyotrophic lateral sclerosis: A proposed mechanism , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[57] Jeffrey Rothstein,et al. Mutant SOD1 causes motor neuron disease independent of copper chaperone–mediated copper loading , 2002, Nature Neuroscience.
[58] Zuoshang Xu,et al. Mutant Cu, Zn Superoxide Dismutase that Causes Motoneuron Degeneration Is Present in Mitochondria in the CNS , 2002, The Journal of Neuroscience.
[59] Antoine Margeot,et al. Genome‐wide analysis of mRNAs targeted to yeast mitochondria , 2002, EMBO reports.
[60] V. Culotta,et al. Manganese Superoxide Dismutase in Saccharomyces cerevisiae Acquires Its Metal Co-factor through a Pathway Involving the Nramp Metal Transporter, Smf2p* , 2001, The Journal of Biological Chemistry.
[61] G. Lubec,et al. Protein expression in Down syndrome brain , 2001, Amino Acids.
[62] Y. Bourbonnais,et al. Candida albicans Expresses an Unusual Cytoplasmic Manganese-containing Superoxide Dismutase (SOD3 Gene Product) upon the Entry and during the Stationary Phase* , 2001, The Journal of Biological Chemistry.
[63] L. T. Jensen,et al. A fraction of yeast Cu,Zn-superoxide dismutase and its metallochaperone, CCS, localize to the intermembrane space of mitochondria. A physiological role for SOD1 in guarding against mitochondrial oxidative damage. , 2001, The Journal of biological chemistry.
[64] J. Holstege,et al. CuZn superoxide dismutase (SOD1) accumulates in vacuolated mitochondria in transgenic mice expressing amyotrophic lateral sclerosis-linked SOD1 mutations , 2001, Acta Neuropathologica.
[65] A. Lamb,et al. Heterodimeric structure of superoxide dismutase in complex with its metallochaperone , 2001, Nature Structural Biology.
[66] P. Langford,et al. A Novel Heme Protein, the Cu,Zn-Superoxide Dismutase from Haemophilus ducreyi * , 2001, The Journal of Biological Chemistry.
[67] T. Rouault,et al. Iron on the brain , 2001, Nature Genetics.
[68] C. Outten,et al. Femtomolar Sensitivity of Metalloregulatory Proteins Controlling Zinc Homeostasis , 2001, Science.
[69] T. O’Halloran,et al. Mechanism of Cu,Zn-Superoxide Dismutase Activation by the Human Metallochaperone hCCS * , 2001, The Journal of Biological Chemistry.
[70] A. Rosenzweig,et al. Copper delivery by metallochaperone proteins. , 2001, Accounts of chemical research.
[71] E. Cadenas,et al. Mitochondrial respiratory chain-dependent generation of superoxide anion and its release into the intermembrane space. , 2001, The Biochemical journal.
[72] I. Fridovich,et al. Copper- and Zinc-containing Superoxide Dismutase Can Act as a Superoxide Reductase and a Superoxide Oxidase* , 2000, The Journal of Biological Chemistry.
[73] V. Culotta,et al. Copper Activation of Superoxide Dismutase 1 (SOD1) in Vivo , 2000, The Journal of Biological Chemistry.
[74] J. Valentine,et al. Yeast Lacking Superoxide Dismutase(s) Show Elevated Levels of “Free Iron” as Measured by Whole Cell Electron Paramagnetic Resonance* , 2000, The Journal of Biological Chemistry.
[75] T. O’Halloran,et al. Metallochaperones, an Intracellular Shuttle Service for Metal Ions* , 2000, The Journal of Biological Chemistry.
[76] J. Walker,et al. Identification and functions of new transporters in yeast mitochondria. , 2000, Biochimica et biophysica acta.
[77] K. Davies,et al. Mitochondrial free radical generation, oxidative stress, and aging. , 2000, Free radical biology & medicine.
[78] D L Price,et al. Copper chaperone for superoxide dismutase is essential to activate mammalian Cu/Zn superoxide dismutase. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[79] J. W. Whittaker,et al. Thermally Triggered Metal Binding by Recombinant Thermus thermophilus Manganese Superoxide Dismutase, Expressed as the Apo-enzyme* , 1999, The Journal of Biological Chemistry.
[80] R. Salvi,et al. Age-related cochlear hair cell loss is enhanced in mice lacking copper/zinc superoxide dismutase , 1999, Neurobiology of Aging.
[81] 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.
[82] M. Matzuk,et al. Ovarian function in superoxide dismutase 1 and 2 knockout mice. , 1998, Endocrinology.
[83] A. Nanji,et al. Increased lipid peroxidation and impaired antioxidant enzyme function is associated with pathological liver injury in experimental alcoholic liver disease in rats fed diets high in corn oil and fish oil , 1998, Hepatology.
[84] A. Dancis. Genetic analysis of iron uptake in the yeast Saccharomyces cerevisiae. , 1998, The Journal of pediatrics.
[85] Anne‐Frances Miller,et al. A Simple Proposal That Can Explain the Inactivity of Metal-Substituted Superoxide Dismutases , 1998 .
[86] G. Hunter,et al. Cloning, Expression, and Characterization of Two Manganese Superoxide Dismutases from Caenorhabditis elegans * , 1997, The Journal of Biological Chemistry.
[87] R. Casareno,et al. The Copper Chaperone for Superoxide Dismutase* , 1997, The Journal of Biological Chemistry.
[88] M. Gurney,et al. The Copper Chelator d‐Penicillamine Delays Onset of Disease and Extends Survival in a Transgenic Mouse Model of Familial Amyotrophic Lateral Sclerosis , 1997, The European journal of neuroscience.
[89] I. Fridovich,et al. The copper- and zinc-containing superoxide dismutase from Escherichia coli: molecular weight and stability. , 1997, Archives of biochemistry and biophysics.
[90] 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.
[91] M. Beal,et al. Motor neurons in Cu/Zn superoxide dismutase-deficient mice develop normally but exhibit enhanced cell death after axonal injury , 1996, Nature Genetics.
[92] H. Steinman,et al. Periplasmic copper-zinc superoxide dismutase of Legionella pneumophila: role in stationary-phase survival , 1996, Journal of bacteriology.
[93] C. Epstein,et al. Dilated cardiomyopathy and neonatal lethality in mutant mice lacking manganese superoxide dismutase , 1995, Nature Genetics.
[94] S. Marklund,et al. The interstitium of the human arterial wall contains very large amounts of extracellular superoxide dismutase. , 1995, Arteriosclerosis, thrombosis, and vascular biology.
[95] G. Rotilio,et al. Isolation of an active and heat‐stable monomeric form of Cu,Zn superoxide dismutase from the periplasmic space of Escherichia coli , 1995, FEBS letters.
[96] T. Kwan,et al. Nramp defines a family of membrane proteins. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[97] P. Langford,et al. Bacterial [Cu,Zn]-superoxide dismutase: phylogenetically distinct from the eukaryotic enzyme, and not so rare after all! , 1995, Microbiology.
[98] I. Fridovich,et al. Copper, zinc superoxide dismutase in Escherichia coli: periplasmic localization. , 1995, Archives of biochemistry and biophysics.
[99] D. Borchelt,et al. Superoxide dismutase is an abundant component in cell bodies, dendrites, and axons of motor neurons and in a subset of other neurons. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[100] M Bolognesi,et al. Conserved patterns in the Cu,Zn superoxide dismutase family. , 1994, Journal of molecular biology.
[101] P. L. Larsen. Aging and resistance to oxidative damage in Caenorhabditis elegans. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[102] Y. Moriwaki,et al. Purification and immunohistochemical tissue localization of human xanthine oxidase. , 1993, Biochimica et biophysica acta.
[103] J. Haines,et al. Mutations in Cu/Zn superoxide dismutase gene are associated with familial amyotrophic lateral sclerosis , 1993, Nature.
[104] N. Taniguchi,et al. Site-specific and random fragmentation of Cu,Zn-superoxide dismutase by glycation reaction. Implication of reactive oxygen species. , 1992, The Journal of biological chemistry.
[105] A J Sinskey,et al. Oxidized redox state of glutathione in the endoplasmic reticulum. , 1992, Science.
[106] I. Fridovich,et al. Transcriptional and maturational effects of manganese and iron on the biosynthesis of manganese-superoxide dismutase in Escherichia coli. , 1992, The Journal of biological chemistry.
[107] I. Fridovich,et al. In vivo competition between iron and manganese for occupancy of the active site region of the manganese-superoxide dismutase of Escherichia coli. , 1991, The Journal of biological chemistry.
[108] J. Crapo,et al. Molecular immunocytochemistry of the CuZn superoxide dismutase in rat hepatocytes , 1988, The Journal of cell biology.
[109] N. Taniguchi,et al. Increase in the glucosylated form of erythrocyte Cu-Zn-superoxide dismutase in diabetes and close association of the nonenzymatic glucosylation with the enzyme activity. , 1987, Biochimica et biophysica acta.
[110] K. Asayama,et al. Rat superoxide dismutases. Purification, labeling, immunoassay, and tissue concentration. , 1985, The Journal of biological chemistry.
[111] I. Fridovich,et al. Isolation and characterization of a manganese-containing superoxide dismutase from yeast. , 1975, The Journal of biological chemistry.
[112] D. Tyler,et al. Polarographic assay and intracellular distribution of superoxide dismutase in rat liver. , 1975, The Biochemical journal.
[113] I. Fridovich,et al. An iron-containing superoxide dismutase from Escherichia coli. , 1973, The Journal of biological chemistry.
[114] I. Fridovich,et al. Mitochondrial superoxide simutase. Site of synthesis and intramitochondrial localization. , 1973, The Journal of biological chemistry.
[115] I. Fridovich,et al. Superoxide dismutase from escherichia coli B. A new manganese-containing enzyme. , 1970, The Journal of biological chemistry.
[116] I. Fridovich,et al. Superoxide dismutase. An enzymic function for erythrocuprein (hemocuprein). , 1969, The Journal of biological chemistry.
[117] M. L’Abbé,et al. Copper deficiency induces the upregulation of the copper chaperone for Cu/Zn superoxide dismutase in weanling male rats. , 2003, The Journal of nutrition.
[118] D. Huffman,et al. Function, structure, and mechanism of intracellular copper trafficking proteins. , 2001, Annual review of biochemistry.
[119] Jörg Lindenau,et al. Cellular distribution of superoxide dismutases in the rat CNS , 2000, Glia.
[120] I. Bertini,et al. Structure and Properties of Copper-Zinc Superoxide Dismutases , 1998 .