Inactivation of creatine kinase by S-glutathionylation of the active-site cysteine residue (original) (raw)

Exploring the Role of the Active Site Cysteine in Human Muscle Creatine Kinase

Pan-Fen Wang

Biochemistry, 2006

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Octamer-dimer Transitions of Mitochondrial Creatine Kinase in Heart Disease

Theo Wallimann

Journal of Molecular and Cellular Cardiology, 1999

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Free radical induced inactivation of creatine kinase: sites of interaction, protection, and recovery

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Cardiac performance and creatine kinase flux during inhibition of ATP synthesis in the perfused rat heart

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American Journal of Physiology-Heart and Circulatory Physiology, 1999

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Interaction between the creatine kinase of heart mitochondria and oxidative phosphorylation

R. Altschuld

Journal of Molecular and Cellular Cardiology, 1977

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Control of Heart Oxidative Phosphorylation by Creatine Kinase in Mitochondrial Membranes

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Annals of the New York Academy of Sciences, 1983

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Alkylation of rabbit muscle creatine kinase surface methionine residues inhibits enzyme activity in vitro

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Creatine kinase overexpression improves ATP kinetics and contractile function in postischemic myocardium

Ashwin Akki

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S-Thiolation mimicry: Quantitative and kinetic analysis of redox status of protein cysteines by glutathione-affinity chromatography

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Creatine kinase: The reactive cysteine is required for synergism but is nonessential for catalysis

Theo Wallimann

Biochemistry, 1993

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Maintained Coupling of Oxidative Phosphorylation to Creatine Kinase Activity in Sarcomeric Mitochondrial Creatine Kinase-deficient Mice

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Journal of Molecular and Cellular Cardiology, 1998

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Kinetic, Thermodynamic, and Developmental Consequences of Deleting Creatine Kinase Isoenzymes from the Heart. REACTION KINETICS OF THE CREATINE KINASE ISOENZYMES IN THE INTACT HEART

Matthias Spindler

Journal of Biological Chemistry, 2000

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A technique for in vivo mapping of myocardial creatine kinase metabolism

Mohammad Haris, Jeremy McGarvey, Robert Gorman, Hari Hariharan, Victor Ferrari, Gerald Zsido

Nature Medicine, 2014

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The nature and reactivity of the ‘essential’ thiol in rabbit muscle creatine kinase III (EC 2.7.3.2)

Aila Keto

Biochemical and Biophysical Research Communications, 1982

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Systems bioenergetics of creatine kinase networks: physiological roles of creatine and phosphocreatine in regulation of cardiac cell function

Kersti Tepp

Amino Acids, 2011

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Oxidative myocytes of heart and skeletal muscle express abundant sarcomeric mitochondrial creatine kinase

Jaime Boero

The Histochemical journal, 1999

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Control of heart mitochondrial oxygen consumption by creatine kinase: The importance of enzyme localization

Frank Gellerich

Biochemical and Biophysical Research Communications, 1982

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Conformational changes and inactivation of rabbit muscle creatine kinase in dimethyl sulfoxide solutions

Wen-Bin Ou

Biochemistry and Cell Biology, 2002

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MRS Studies of Creatine Kinase Metabolism in Human Heart

Paul Bottomley

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Limited proteolysis of creatine kinase. Implications for three-dimensional structure and for conformational substates

Theo Wallimann

Biochemistry, 1993

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31P NMR Detection of Subcellular Creatine Kinase Fluxes in the Perfused Rat Heart

philippe mateo

Journal of Biological Chemistry, 2002

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A 31P-NMR saturation transfer study of the regulation of creatine kinase in the rat heart

George Radda

Biochimica et Biophysica Acta (BBA) - Molecular Cell Research, 1982

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Peroxynitrite Modification of Protein Thiols: Oxidation, Nitrosylation, and S-Glutathiolation of Functionally Important Cysteine Residue(s) in the Sarcoplasmic Reticulum Ca-ATPase †

Todd D Williams

Biochemistry, 1999

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Impaired Cardiac Energetics in Mice Lacking Muscle-Specific Isoenzymes of Creatine Kinase

Matthias Spindler

Circulation Research, 1998

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New insights on myocardial pyridine nucleotides and thiol redox state in ischemia and reperfusion damage

Roberto Victor Ferrari

Cardiovascular Research, 2000

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Oligomeric state and membrane binding behaviour of creatine kinase isoenzymes: implications for cellular function and mitochondrial structure

Theo Wallimann

Molecular and cellular biochemistry, 1998

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Oxidant-induced Activation of Type I Protein Kinase A Is Mediated by RI Subunit Interprotein Disulfide Bond Formation

Robin Wait

Journal of Biological Chemistry, 2006

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ATP flux through creatine kinase in the normal, stressed, and failing human heart

Paul Bottomley

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Subcellular Creatine Kinase Alterations : Implications in Heart Failure

Jacqueline Hoerter, Vladimir Veksler

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Creatine kinase-deficient hearts exhibit increased susceptibility to ischemia-reperfusion injury and impaired calcium homeostasis

Matthias Spindler

AJP: Heart and Circulatory Physiology, 2004

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Altered Creatine Kinase Adenosine Triphosphate Kinetics in Failing Hypertrophied Human Myocardium

Paul Bottomley

Circulation, 2006

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Changes in the mitochondrial proteome from mouse hearts deficient in creatine kinase

Alan P Koretsky

Physiological genomics, 2001

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Unfolding of Rabbit Muscle Creatine Kinase Induced by Acid: A STUDY USING ELECTROSPRAY IONIZATION MASS SPECTROMETRY, ISOTHERMAL TITRATION CALORIMETRY, AND FLUORESCENCE SPECTROSCOPY

Alain Van Dorsselaer, J. Haiech

Journal of Biological Chemistry, 2003

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Regulation of respiration controlled by mitochondrial creatine kinase in permeabilized cardiac cells in situ

Claire Monge, Tuuli Kaambre

Biochimica et Biophysica Acta (BBA) - Bioenergetics, 2009

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