Psychrophilic enzymes: revisiting the thermodynamic parameters of activation may explain local flexibility.
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[1] G. Feller,et al. Psychrophilic enzymes: a thermodynamic challenge. , 1997, Biochimica et biophysica acta.
[2] G. Feller,et al. Trypsin from antarctic fish (Paranotothenia magellanica forster) as compared with trout (Salmo gairdneri) trypsin , 1988 .
[3] G. Feller,et al. Cold adaptation of proteins. Purification, characterization, and sequence of the heat-labile subtilisin from the antarctic psychrophile Bacillus TA41. , 1994, The Journal of biological chemistry.
[4] N. Willassen,et al. Cold adaption of enzymes: Structural comparison between salmon and bovine trypsins , 1994, Proteins.
[5] A. Smalås,et al. Comparative molecular dynamics simulation studies of salmon and bovine trypsins in aqueous solution. , 1995, Protein engineering.
[6] L. Camardella,et al. Glucose-6-phosphate dehydrogenase from the blood cells of two antarctic teleosts: correlation with cold adaptation. , 1995, Biochimica et biophysica acta.
[7] J. Londesborough. The causes of sharply bent or discontinuous Arrhenius plots for enzyme-catalysed reactions. , 1980, European Journal of Biochemistry.
[8] P. Price. A habitat for psychrophiles in deep Antarctic ice. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[9] G. Somero,et al. Hot spots in cold adaptation: localized increases in conformational flexibility in lactate dehydrogenase A4 orthologs of Antarctic notothenioid fishes. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[10] G. Somero,et al. Proteins and temperature. , 1995, Annual review of physiology.
[11] J. Lamotte‐Brasseur,et al. Structural, Kinetic, and Calorimetric Characterization of the Cold-active Phosphoglycerate Kinase from the AntarcticPseudomonas sp. TACII18* , 2000, The Journal of Biological Chemistry.
[12] B. Brandsdal,et al. Comparative molecular dynamics of mesophilic and psychrophilic protein homologues studied by 1.2 ns simulations. , 1999, Journal of biomolecular structure & dynamics.
[13] N. Willassen,et al. Temperature and pH sensitivity of trypsins from Atlantic salmon (Salmo salar) in comparison with bovine and porcine trypsin. , 1996, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[14] L. Camardella,et al. L-Glutamate dehydrogenase from the antarctic fish Chaenocephalus aceratus. Primary structure, function and thermodynamic characterisation: relationship with cold adaptation. , 2000, Biochimica et biophysica acta.
[15] P. Low,et al. Temperature adaptation of enzymes: roles of the free energy, the enthalpy, and the entropy of activation. , 1973, Proceedings of the National Academy of Sciences of the United States of America.
[16] F. Payan,et al. The active center of a mammalian alpha-amylase. Structure of the complex of a pancreatic alpha-amylase with a carbohydrate inhibitor refined to 2.2-A resolution. , 1994, Biochemistry.
[17] G. Feller,et al. Psychrophilic enzymes: molecular basis of cold adaptation , 1997, Cellular and Molecular Life Sciences CMLS.
[18] G. Prisco,et al. Fishes of Antarctica , 1998, Springer Milan.
[19] I. Johnston,et al. Temperature adaptation in myosin of Antarctic fish , 1975, Nature.
[20] J. V. Van Beeumen,et al. Characterization of the C-terminal Propeptide Involved in Bacterial Wall Spanning of α-Amylase from the Psychrophile Alteromonas haloplanctis * , 1998, The Journal of Biological Chemistry.
[21] B. Devreese,et al. Xylanase from the psychrophilic yeast Cryptococcus adeliae , 2000, Extremophiles.
[22] B. Simpson,et al. Purification and characterization of trypsin from the Greenland cod (Gadus ogac). 1. Kinetic and thermodynamic characteristics , 1984 .
[23] A. Fersht. Enzyme structure and mechanism , 1977 .
[24] N. Russell,et al. Toward a molecular understanding of cold activity of enzymes from psychrophiles , 2000, Extremophiles.
[25] C. Gerday,et al. Subtilisin from psychrophilic antarctic bacteria: characterization and site-directed mutagenesis of residues possibly involved in the adaptation to cold. , 1997, Protein engineering.
[26] P. Privalov,et al. Stability and mobility of the collagen structure. , 1979, Journal of molecular biology.
[27] J. V. Van Beeumen,et al. Purification, characterization, and nucleotide sequence of the thermolabile alpha-amylase from the antarctic psychrotroph Alteromonas haloplanctis A23. , 1992, The Journal of biological chemistry.
[28] G. Taylor,et al. Structural adaptations of the cold-active citrate synthase from an Antarctic bacterium. , 1998, Structure.
[29] C. Gerday,et al. Molecular adaptation to cold of an Antarctic bacterial lipase , 1997 .