Energetic communication between mitochondria and nucleus directed by catalyzed phosphotransfer
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[1] P. Dzeja,et al. Adenylate kinase: Kinetic behavior in intact cells indicates it is integral to multiple cellular processes , 1998, Molecular and Cellular Biochemistry.
[2] X. Leverve,et al. On the regulation of cellular energetics in health and disease , 1996, Molecular and Cellular Biochemistry.
[3] Andre Terzic,et al. Reduced activity of enzymes coupling ATP-generating with ATP-consuming processes in the failing myocardium , 2004, Molecular and Cellular Biochemistry.
[4] A. Terzic,et al. Cellular Energetics in the Preconditioned State , 2001, The Journal of Biological Chemistry.
[5] A. Terzic,et al. Mitochondria: gateway for cytoprotection. , 2001, Circulation research.
[6] V. Shahin,et al. Evidence for Ca2+‐ and ATP‐sensitive peripheral channels in nuclear pore complexes , 2001, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[7] J. Weiss,et al. The cytoplasm: no longer a well-mixed bag. , 2001, Circulation research.
[8] A. Terzic,et al. Directed Inhibition of Nuclear Import in Cellular Hypertrophy* , 2001, The Journal of Biological Chemistry.
[9] A. Terzic,et al. Adenylate kinase phosphotransfer communicates cellular energetic signals to ATP-sensitive potassium channels , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[10] Edwin Janssen,et al. Compromised Energetics in the Adenylate Kinase AK1Gene Knockout Heart under Metabolic Stress* , 2000, The Journal of Biological Chemistry.
[11] Arend Heerschap,et al. Adenylate kinase 1 gene deletion disrupts muscle energetic economy despite metabolic rearrangement , 2000, The EMBO journal.
[12] T. Langer. Nuclear transport of histone 2b in mammalian cells is signal- and energy-dependent and different from the importin α/β-mediated process , 2000, Histochemistry and Cell Biology.
[13] A. Terzic,et al. Failing energetics in failing hearts , 2000, Current cardiology reports.
[14] M. Hetzer,et al. An Atp-Dependent, Ran-Independent Mechanism for Nuclear Import of the U1a and U2b′′ Spliceosome Proteins , 2000, Journal of Cell Biology.
[15] M. Nachury,et al. The direction of transport through the nuclear pore can be inverted. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[16] B. Séraphin,et al. Dbp5, a DEAD‐box protein required for mRNA export, is recruited to the cytoplasmic fibrils of nuclear pore complex via a conserved interaction with CAN/Nup159p , 1999, The EMBO journal.
[17] M. Moore,et al. Getting across the nuclear pore complex. , 1999, Trends in cell biology.
[18] A. Terzic,et al. Structural plasticity of the cardiac nuclear pore complex in response to regulators of nuclear import. , 1999, Circulation research.
[19] A. Terzic,et al. Adenylate kinase-catalyzed phosphotransfer in the myocardium : increased contribution in heart failure. , 1999, Circulation research.
[20] U. Kutay,et al. The translocation of transportin–cargo complexes through nuclear pores is independent of both Ran and energy , 1999, Current Biology.
[21] J. Olivo,et al. Receptor-mediated substrate translocation through the nuclear pore complex without nucleotide triphosphate hydrolysis , 1999, Current Biology.
[22] U. Kutay,et al. Transport between the cell nucleus and the cytoplasm. , 1999, Annual review of cell and developmental biology.
[23] J. Ingwall,et al. Impaired cardiac energetics in mice lacking muscle-specific isoenzymes of creatine kinase. , 1998, Circulation research.
[24] E. Izaurralde,et al. Transport of macromolecules between the nucleus and the cytoplasm. , 1998, RNA.
[25] T. Ouatas,et al. Differential expression of nucleoside diphosphate kinases (NDPK/NM23) during Xenopus early development. , 1998, The International journal of developmental biology.
[26] I. Mattaj,et al. Nucleocytoplasmic transport: the soluble phase. , 1998, Annual review of biochemistry.
[27] M. Duchen,et al. The relationship between mitochondrial state, ATP hydrolysis, [Mg2+]i and [Ca2+]i studied in isolated rat cardiomyocytes. , 1996, The Journal of physiology.
[28] D. Clapham,et al. Conformational States of the Nuclear Pore Complex Induced by Depletion of Nuclear Ca2+ Stores , 1996, Science.
[29] P. Dzeja,et al. Suppression of Creatine Kinase-catalyzed Phosphotransfer Results in Increased Phosphoryl Transfer by Adenylate Kinase in Intact Skeletal Muscle* , 1996, The Journal of Biological Chemistry.
[30] J. Ingwall,et al. Energetic basis for reduced contractile reserve in isolated rat hearts. , 1996, The American journal of physiology.
[31] M. Yamada,et al. Tissue-specific and developmentally regulated expression of the genes encoding adenylate kinase isozymes. , 1993, Journal of biochemistry.
[32] P. Manos,et al. Cellular and subcellular compartmentation of creatine kinase in brain. , 1993, Developmental neuroscience.
[33] C. Mathews. Enzyme organization in DNA precursor biosynthesis. , 1993, Progress in nucleic acid research and molecular biology.
[34] J. Hanover. The nuclear pore: at the crossroads , 1992, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[35] M. Wyss,et al. Intracellular compartmentation, structure and function of creatine kinase isoenzymes in tissues with high and fluctuating energy demands: the 'phosphocreatine circuit' for cellular energy homeostasis. , 1992, The Biochemical journal.
[36] L. Liotta,et al. A Drosophila gene that is homologous to a mammalian gene associated with tumor metastasis codes for a nucleoside diphosphate kinase , 1990, Cell.
[37] D. Goldfarb,et al. Facilitated nuclear transport of histone H1 and other small nucleophilic proteins , 1990, Cell.
[38] U. Oechsner,et al. Yeast adenylate kinase is active simultaneously in mitochondria and cytoplasm and is required for non-fermentative growth. , 1988, European journal of biochemistry.
[39] M. Bachmann,et al. Purification and characterization of the major nucleoside triphosphatase from rat liver nuclear envelopes. , 1986, The Journal of biological chemistry.
[40] S. Bessman,et al. The creatine-creatine phosphate energy shuttle. , 1985, Annual review of biochemistry.
[41] P. Dzeja,et al. The effect of adenylate kinase activity on the rate and efficiency of energy transport from mitochondria to hexokinase. , 1985, Biochemistry international.
[42] P. Russell,et al. Elemental sulfur: a novel inhibitor of adenylate kinase. , 1983, Biochemical and biophysical research communications.
[43] J. Ottaway,et al. The role of compartmentation in the control of glycolysis. , 1977, Current topics in cellular regulation.
[44] G. Lienhard,et al. P 1 ,P 5 -Di(adenosine-5')pentaphosphate, a potent multisubstrate inhibitor of adenylate kinase. , 1973, The Journal of biological chemistry.
[45] W. Criss. Rat liver adenosine triphosphate: adenosine monophosphate phosphotransferase activity. II. Subcellular localization of adenylate kinase isozymes. , 1970, The Journal of biological chemistry.