Comprehensive secondary‐structure analysis of disulfide variants of lysozyme by synchrotron‐radiation vacuum‐ultraviolet circular dichroism
暂无分享,去创建一个
Hideki Tachibana | Hidenori Watanabe | Shin-ichi Tate | K. Gekko | H. Tachibana | S. Tate | Koichi Matsuo | Kunihiko Gekko | Hidenori Watanabe | K. Matsuo
[1] Hidenori Watanabe,et al. Improved sequence‐based prediction of protein secondary structures by combining vacuum‐ultraviolet circular dichroism spectroscopy with neural network , 2008, Proteins.
[2] Mikio Kataoka,et al. Secondary-structure analysis of denatured proteins by vacuum-ultraviolet circular dichroism spectroscopy. , 2007, Biophysical journal.
[3] Dong Xu,et al. MUPRED: A tool for bridging the gap between template based methods and sequence profile based methods for protein secondary structure prediction , 2006, Proteins.
[4] K. Gekko,et al. Improved estimation of the secondary structures of proteins by vacuum-ultraviolet circular dichroism spectroscopy. , 2005, Journal of biochemistry.
[5] J. Hirst,et al. Protein secondary structure prediction with dihedral angles , 2005, Proteins.
[6] Aleksey A. Porollo,et al. Combining prediction of secondary structure and solvent accessibility in proteins , 2005, Proteins.
[7] D. Clarke,et al. Applications of extended ultra-violet circular dichroism spectroscopy in biology and medicine , 2004 .
[8] A. Yokota,et al. NMR characterization of three-disulfide variants of lysozyme, C64A/C80A, C76A/C94A, and C30A/C115A--a marginally stable state in folded proteins. , 2004, Biochemistry.
[9] T. Konno,et al. Pressure-dissociable reversible assembly of intrinsically denatured lysozyme is a precursor for amyloid fibrils , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[10] K. Gekko,et al. Secondary-structure analysis of proteins by vacuum-ultraviolet circular dichroism spectroscopy. , 2004, Journal of biochemistry.
[11] K. Gekko,et al. Effects of disulfide bonds on compactness of protein molecules revealed by volume, compressibility, and expansibility changes during reduction. , 2003, Biochemistry.
[12] OjimaNoriyuki,et al. Vacuum-Ultraviolet Circular Dichroism Spectrophotometer Using Synchrotron Radiation: Optical System and On-line Performance , 2003 .
[13] Yosuke Matsushima,et al. Optical Cell with a Temperature-Control Unit for a Vacuum-Ultraviolet Circular Dichroism Spectrophotometer , 2003, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[14] A. Yokota,et al. NMR structural study of two-disulfide variant of hen lysozyme: 2SS[6-127, 30-115]--a disulfide intermediate with a partly unfolded structure. , 2002, Biochemistry.
[15] W. Delano. The PyMOL Molecular Graphics System , 2002 .
[16] R. W. Janes,et al. Synchrotron radiation circular dichroism spectroscopy of proteins: secondary structure, fold recognition and structural genomics. , 2001, Current opinion in chemical biology.
[17] P Chacón,et al. SOMCD: Method for evaluating protein secondary structure from UV circular dichroism spectra , 2001, Proteins.
[18] H. Tachibana,et al. Native-like tertiary structure formation in the alpha-domain of a hen lysozyme two-disulfide variant. , 2001, Journal of molecular biology.
[19] N. Sreerama,et al. Estimation of protein secondary structure from circular dichroism spectra: comparison of CONTIN, SELCON, and CDSSTR methods with an expanded reference set. , 2000, Analytical biochemistry.
[20] H. Tachibana. Propensities for the formation of individual disulfide bonds in hen lysozyme and the size and stability of disulfide‐associated submolecular structures , 2000, FEBS letters.
[21] K. Gekko,et al. Vacuum-Ultraviolet Circular Dichroism Spectrophotometer Using Synchrotron Radiation: Optical System and Off-line Performance , 2000 .
[22] Y. Kubo,et al. The transition state in the folding-unfolding reaction of four species of three-disulfide variant of hen lysozyme: the role of each disulfide bridge. , 2000, Journal of molecular biology.
[23] N. Sreerama,et al. Estimation of the number of α‐helical and β‐strand segments in proteins using circular dichroism spectroscopy , 2008, Protein science : a publication of the Protein Society.
[24] D T Jones,et al. Protein secondary structure prediction based on position-specific scoring matrices. , 1999, Journal of molecular biology.
[25] S M King,et al. Assigning secondary structure from protein coordinate data , 1999, Proteins.
[26] T. Keiderling,et al. Novel matrix descriptor for secondary structure segments in proteins: demonstration of predictability from circular dichroism spectra. , 1999, Analytical biochemistry.
[27] K. Ohta,et al. Relationship between the optimal temperature for oxidative refolding and the thermal stability of refolded state of hen lysozyme three-disulfide derivatives. , 1994, Biochemistry.
[28] N. Berova,et al. Circular Dichroism: Principles and Applications , 1994 .
[29] R. Woody,et al. Contributions of tryptophan side chains to the circular dichroism of globular proteins: exciton couplets and coupled oscillators. , 1994, Faraday discussions.
[30] C. Hill,et al. Crystal structure of a ubiquitin-dependent degradation substrate: a three-disulfide form of lysozyme. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[31] J. Sutherland,et al. Circular dichroism user facility at the National Synchrotron Light Source: estimation of protein secondary structure. , 1992, BioTechniques.
[32] K. Ohta,et al. Efficient in vitro folding of the three‐disulfide derivatives of hen lysozyme in the presence of glycerol , 1992, FEBS letters.
[33] W C Johnson,et al. Extending CD spectra of proteins to 168 nm improves the analysis for secondary structures. , 1992, Analytical biochemistry.
[34] C. Dobson,et al. A three-disulphide derivative of hen lysozyme. Structure, dynamics and stability. , 1991, The Biochemical journal.
[35] T. Creighton. Disulphide bonds and protein stability , 1988, BioEssays : news and reviews in molecular, cellular and developmental biology.
[36] H. Scheraga,et al. Influence of an extrinsic cross-link on the folding pathway of ribonuclease A. Conformational and thermodynamic analysis of cross-linked (lysine7-lysine41)-ribonuclease a. , 1984, Biochemistry.
[37] W. Kabsch,et al. Dictionary of protein secondary structure: Pattern recognition of hydrogen‐bonded and geometrical features , 1983, Biopolymers.
[38] T. Creighton,et al. Role of the environment in the refolding of reduced pancreatic trypsin inhibitor. , 1980, Journal of molecular biology.
[39] E. M. Rowe,et al. The first use of synchrotron radiation for vacuum ultraviolet circular dichroism measurements , 1980 .
[40] G J Williams,et al. The Protein Data Bank: a computer-based archival file for macromolecular structures. , 1978, Archives of biochemistry and biophysics.
[41] H. Scheraga,et al. Prediction of structural homology between bovine -lactalbumin and hen egg white lysozyme. , 1971, Archives of biochemistry and biophysics.
[42] C. Anfinsen,et al. The kinetics of formation of native ribonuclease during oxidation of the reduced polypeptide chain. , 1961, Proceedings of the National Academy of Sciences of the United States of America.