The Highly Exposed Loop Region in Mammalian Purple Acid Phosphatase Controls the Catalytic Activity
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Jozef Van Beeumen | Bart Samyn | J. V. Van Beeumen | E. G. Funhoff | B. Samyn | B. Averill | C. Klaassen | Enrico G. Funhoff | Corné H. W. Klaassen | Bruce A. Averill | Enrico G. Funhoff
[1] M. Merkx,et al. Probing the role of the trivalent metal in phosphatase ester hydrolysis: Preparation and characterization of purple acid phosphatases containing AlIIIZnII and InIIIZnII active sites, including the first example of an active aluminium enzyme , 1999 .
[2] James C. Davis,et al. Spectroscopic and magnetic studies of the purple acid phosphatase from bovine spleen , 1987 .
[3] S. Provencher,et al. Estimation of globular protein secondary structure from circular dichroism. , 1981, Biochemistry.
[4] J T Yang,et al. Calculation of protein conformation from circular dichroism. , 1986, Methods in enzymology.
[5] R A Sayle,et al. RASMOL: biomolecular graphics for all. , 1995, Trends in biochemical sciences.
[6] J. Vincent,et al. An enzyme with a double identity: purple acid phosphatase and tartrate‐resistant acid phosphatase , 1990, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[7] D. Hume,et al. Crystal structure of mammalian purple acid phosphatase. , 1999, Structure.
[8] M. A. Aquino,et al. Mechanism of the reaction of different phosphates with the iron(II)iron(III) form of purple acid phosphatase from porcine uteri (uteroferrin) , 1994 .
[9] S. Venyaminov,et al. Circular dichroic analysis of denatured proteins: inclusion of denatured proteins in the reference set. , 1993, Analytical biochemistry.
[10] B. Averill,et al. Purification and properties of the native form of the purple acid phosphatase from bovine spleen. , 1993, Biochemistry.
[11] J. Vincent,et al. Spectroscopic and kinetics studies of a high-salt-stabilized form of the purple acid phosphatase from bovine spleen. , 1991, Biochemistry.
[12] D. Herries. Enzyme Kinetics: Behaviour and Analysis of Rapid Equilibrium and Steady-State Enzyme Systems: By Irwin H. Segel. John Wiley & Sons, 1975. pp xxii + 957. Boards, £15.00 , 1976 .
[13] E. Koonin. Conserved sequence pattern in a wide variety of phosphoesterases , 1994, Protein science : a publication of the Protein Society.
[14] J. V. Van Beeumen,et al. Applicability of the alkylation chemistry for chemical C-terminal protein sequence analysis. , 2000, Analytical chemistry.
[15] T. Cox,et al. Purple acid phosphatase of the human macrophage and osteoclast. Characterization, molecular properties, and crystallization of the recombinant di-iron-oxo protein secreted by baculovirus-infected insect cells. , 1994, The Journal of biological chemistry.
[16] T. Klabunde,et al. The Dimetal Center in purple acid phosphatases , 1997 .
[17] L. Que,et al. Dinuclear Iron‐ and Manganese‐Oxo Sites in Biology , 1991 .
[18] P. Reinemer,et al. Crystal structure of the catalytic subunit of human protein phosphatase 1 and its complex with tungstate. , 1995, Journal of molecular biology.
[19] Y. Lindqvist,et al. Tartrate‐Resistant Bone Acid Phosphatase: Large‐Scale Production and Purification of the Recombinant Enzyme, Characterization, and Crystallization , 1999, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[20] U. K. Laemmli,et al. Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4 , 1970, Nature.
[21] E. Johansson,et al. Three-dimensional structure of a mammalian purple acid phosphatase at 2.2 A resolution with a mu-(hydr)oxo bridged di-iron center. , 1999, Journal of molecular biology.
[22] K. Brew,et al. Mutational analysis of the catalytic subunit of muscle protein phosphatase-1. , 1996, Biochemistry.
[23] A. Hengge,et al. THE TRANSITION STATE OF THE PHOSPHORYL-TRANSFER REACTION CATALYZED BY THE LAMBDA SER/THR PROTEIN PHOSPHATASE , 1999 .
[24] Anna Tempczyk,et al. Crystal structures of human calcineurin and the human FKBP12–FK506–calcineurin complex , 1995, Nature.
[25] M. Merkx,et al. Evidence for nonbridged coordination of p-nitrophenyl phosphate to the dinuclear Fe(III)-M(II) center in bovine spleen purple acid phosphatase during enzymatic turnover. , 1999, Biochemistry.
[26] M. Hendrich,et al. Mössbauer and EPR study of the binuclear iron centre in purple acid phosphatase. , 1983, Biochimica et biophysica acta.
[27] Paul Greengard,et al. Three-dimensional structure of the catalytic subunit of protein serine/threonine phosphatase-1 , 1995, Nature.
[28] D. Hume,et al. Recombinant human and mouse purple acid phosphatases: expression and characterization. , 1997, Archives of biochemistry and biophysics.
[29] P. Aisen,et al. Detection of a g' = 1.74 EPR signal in bovine spleen purple acid phosphatase. , 1982, The Journal of biological chemistry.
[30] P. Aisen,et al. Physical characterization of two-iron uteroferrin. Evidence for a spin-coupled binuclear iron cluster. , 1983, The Journal of biological chemistry.
[31] J. Vincent,et al. Sequence homology between purple acid phosphatases and phosphoprotein phosphatases , 1990, FEBS letters.
[32] J. Vincent,et al. Electron paramagnetic resonance studies on the high-salt form of bovine spleen purple acid phosphatase. , 1992, Biochemistry.
[33] S. Bryant,et al. Eukaryotic translation elongation factor 1γ contains a glutathione transferase domain—Study of a diverse, ancient protein super family using motif search and structural modeling , 1994, Protein science : a publication of the Protein Society.
[34] J. Beck,et al. Enzymatically active zinc, copper and mercury derivatives of the one-iron form of pig allantoic fluid acid phosphatase. , 1984, Biochimica et biophysica acta.
[35] W C Johnson,et al. Variable selection method improves the prediction of protein secondary structure from circular dichroism spectra. , 1987, Analytical biochemistry.
[36] J. C. Davis,et al. Evidence for a spin-coupled binuclear iron unit at the active site of the purple acid phosphatase from beef spleen. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[37] Some problems of CD analyses of protein conformation. , 1991, Analytical biochemistry.
[38] D. Marshak,et al. Applications using an alkylation method for Carboxy-terminal protein sequencing , 1995 .
[39] P. Caron,et al. X-ray structure of calcineurin inhibited by the immunophilin-immunosuppressant FKBP12-FK506 complex , 1995, Cell.
[40] M. Merkx,et al. Ga3+ as a functional substitute for Fe3+: preparation and characterization of the Ga3+Fe2+ and Ga3+Zn2+ forms of bovine spleen purple acid phosphatase. , 1998, Biochemistry.
[41] M. Dietrich,et al. Purple acid phosphatase from bovine spleen. Interactions at the active site in relation to the reaction mechanism. , 1991, European journal of biochemistry.
[42] D. Sheer,et al. Type 5 acid phosphatase. Sequence, expression and chromosomal localization of a differentiation-associated protein of the human macrophage. , 1990, European journal of biochemistry.
[43] P. Aisen,et al. Characterization of pink and purple uteroferrin by resonance Raman and CD spectroscopy. , 1982, The Journal of biological chemistry.
[44] P. Aisen,et al. EPR signal, purple color, and iron binding in porcine uteroferrin. , 1982, The Journal of biological chemistry.
[45] T. Chambers,et al. Purification and characterization of a tartrate-resistant acid phosphatase from human osteoclastomas. , 1989, The Biochemical journal.
[46] G. Andersson,et al. Comparative studies of rat recombinant purple acid phosphatase and bone tartrate-resistant acid phosphatase. , 1997, The Biochemical journal.
[47] I. H. Segel. Enzyme Kinetics: Behavior and Analysis of Rapid Equilibrium and Steady-State Enzyme Systems , 1975 .
[48] J. Vincent,et al. Proteins Containing Oxo-Bridged Dinuclear Iron Centers: A Bioinorganic Perspective , 1990 .
[49] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.
[50] L. Que,et al. NOESY Studies on the Fe(III)Co(II) Active Site of the Purple Acid Phosphatase Uteroferrin , 1992 .
[51] P. Greengard,et al. Site-directed mutagenesis of amino acid residues of protein phosphatase 1 involved in catalysis and inhibitor binding. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[52] G. Andersson,et al. Crystal structure of a mammalian purple acid phosphatase. , 1999, Journal of molecular biology.
[53] P. Tucker,et al. Crystal structure of a purple acid phosphatase containing a dinuclear Fe(III)-Zn(II) active site. , 1995, Science.
[54] Eric C. Griffith,et al. Overexpression and purification of human calcineurin alpha from Escherichia coli and assessment of catalytic functions of residues surrounding the binuclear metal center. , 1997, Biochemistry.
[55] J. de Jersey,et al. Iron-containing acid phosphatases: characterization of the metal-ion binding site of the enzyme from pig allantoic fluid. , 1980, Biochemical and biophysical research communications.
[56] J. Yates,et al. Sequence homology in the metalloproteins; purple acid phosphatase from beef spleen and uteroferrin from porcine uterus. , 1987, Biochemical and biophysical research communications.
[57] R. Roberts,et al. Molecular cloning of the type 5, iron-containing, tartrate-resistant acid phosphatase from human placenta. , 1989, The Journal of biological chemistry.
[58] G. Zon,et al. Sequencing of peptides and proteins from the carboxy terminus. , 1992, Analytical biochemistry.