Functional Expression of Phosphagen Kinase Systems Confers Resistance to Transient Stresses in Saccharomyces cerevisiae by Buffering the ATP Pool*
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[1] J. Bailey,et al. Expressing creatine kinase in transgenic tobacco – a first step towards introducing an energy buffering system in plants , 2002, Transgenic Research.
[2] R. Snow,et al. Creatine and the creatine transporter: A review , 2001, Molecular and Cellular Biochemistry.
[3] K. Fritz-Wolf,et al. Functional aspects of the X-ray structure of mitochondrial creatine kinase: A molecular physiology approach , 1998, Molecular and Cellular Biochemistry.
[4] A. Kuznetsov,et al. Metabolic compartmentation and substrate channelling in muscle cells , 1994, Molecular and Cellular Biochemistry.
[5] Uwe Sauer,et al. Bacillus subtilis Metabolism and Energetics in Carbon-Limited and Excess-Carbon Chemostat Culture , 2001, Journal of bacteriology.
[6] A. Good,et al. Vacuolar H+-ATPase, but not mitochondrial F1F0-ATPase, is required for aluminum resistance in Saccharomyces cerevisiae. , 2001, FEMS microbiology letters.
[7] A. R. Fernandes,et al. The activity of plasma membrane H+‐ATPase is strongly stimulated during Saccharomyces cerevisiae adaptation to growth under high copper stress, accompanying intracellular acidification , 2001, Yeast.
[8] M. Noguchi,et al. ATP-regenerating system in the cilia of Paramecium caudatum. , 2001, Journal of Experimental Biology.
[9] C. Hewitt,et al. Physiological responses to mixing in large scale bioreactors. , 2001, Journal of biotechnology.
[10] Ramón Mira de Orduña,et al. Quantitative determination of L-arginine by enzymatic end-point analysis. , 2001 .
[11] U. Sauer. Evolutionary engineering of industrially important microbial phenotypes. , 2001, Advances in biochemical engineering/biotechnology.
[12] W. Ellington,et al. Evolution and physiological roles of phosphagen systems. , 2001, Annual review of physiology.
[13] M. Wyss,et al. Creatine and creatinine metabolism. , 2000, Physiological reviews.
[14] U. Sauer,et al. Altered regulation of pyruvate kinase or co-overexpression of phosphofructokinase increases glycolytic fluxes in resting Escherichia coli. , 2000, Biotechnology and bioengineering.
[15] A. Iribarren,et al. Trypanosoma cruzi Arginine Kinase Characterization and Cloning , 2000, The Journal of Biological Chemistry.
[16] P. F. Almeida,et al. The H+-ATPase in the Plasma Membrane ofSaccharomyces cerevisiae Is Activated during Growth Latency in Octanoic Acid-Supplemented Medium Accompanying the Decrease in Intracellular pH and Cell Viability , 1998, Applied and Environmental Microbiology.
[17] G. Unden,et al. Changes in the proton potential and the cellular energetics of Escherichia coli during growth by aerobic and anaerobic respiration or by fermentation. , 1998, European journal of biochemistry.
[18] Paul V. Attfield,et al. Stress tolerance: The key to effective strains of industrial baker's yeast , 1997, Nature Biotechnology.
[19] M. Reuss,et al. In vivo analysis of metabolic dynamics in Saccharomyces cerevisiae : I. Experimental observations. , 1997, Biotechnology and bioengineering.
[20] B. Chance,et al. Induction of endotoxin tolerance in transgenic mouse liver expressing creatine kinase , 1996, Hepatology.
[21] A. Brown,et al. Activity of the plasma membrane H(+)-ATPase and optimal glycolytic flux are required for rapid adaptation and growth of Saccharomyces cerevisiae in the presence of the weak-acid preservative sorbic acid , 1996, Applied and environmental microbiology.
[22] T. Imai,et al. The relationship between viability and intracellular pH in the yeast Saccharomyces cerevisiae , 1995, Applied and environmental microbiology.
[23] R. Müller,et al. Yeast vectors for the controlled expression of heterologous proteins in different genetic backgrounds. , 1995, Gene.
[24] W. Ellington,et al. Isolation and sequence analysis of the gene for arginine kinase from the chelicerate arthropod, Limulus polyphemus: insights into catalytically important residues. , 1995, Biochimica et biophysica acta.
[25] Donald Voet,et al. Biochemistry, 2nd ed. , 1995 .
[26] K. Mann,et al. The amino acid sequences of human and pig l‐arginine:glycine amidinotransferase , 1994, FEBS letters.
[27] H. Pörtner,et al. Physiological and metabolic responses to hypoxia in invertebrates. , 1994, Reviews of physiology, biochemistry and pharmacology.
[28] A. Koretsky,et al. Phosphocreatine protects transgenic mouse liver expressing creatine kinase from hypoxia and ischemia. , 1993, The American journal of physiology.
[29] 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.
[30] P. Piper,et al. Plasma-membrane ATPase action affects several stress tolerances of Saccharomyces cerevisiae and Schizosaccharomyces pombe as well as the extent and duration of the heat shock response , 1990 .
[31] K. Brindle,et al. 31P NMR measurements of the ADP concentration in yeast cells genetically modified to express creatine kinase. , 1990, Biochemistry.
[32] W. Ellington. Phosphocreatine represents a thermodynamic and functional improvement over other muscle phosphagens. , 1989, The Journal of experimental biology.
[33] H. Eppenberger,et al. Function of M-line-bound creatine kinase as intramyofibrillar ATP regenerator at the receiving end of the phosphorylcreatine shuttle in muscle. , 1984, The Journal of biological chemistry.
[34] R. Serrano. Plasma membrane ATPase of fungi and plants as a novel type of proton pump. , 1984, Current topics in cellular regulation.
[35] E. Milner-White,et al. Inhibition of adenosine 5'-triphosphate-creatine phosphotransferase by substrate-anion complexes. Evidence for the transition-state organization of the catalytic site. , 1971, The Biochemical journal.