Potentiometric titrations and the helix–coil transition of poly(L‐glutamic acid) and poly‐L‐lysine in aqueous salt solutions
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[1] J. Hermans,et al. Helix formation of poly-L-lysine thiocyanate in aqueous solutions. , 1967, The Journal of physical chemistry.
[2] A. Ciferri,et al. Intrinsic Viscosity of the Coiled Forms of Poly-L-Glutamic Acid and Poly-L-Lysine in Salt Solutions , 1967 .
[3] G. Fasman,et al. The conformational transitions of uncharged poly-L-lysine. Alpha helix-random coil-beta structure. , 1967, Biochemistry.
[4] D. Puett,et al. Interaction between proteins and salt solutions. IV. Enrichment of salts in collagen during denaturation , 1967, Pediatria.
[5] J. T. Yang,et al. Effect of molecular aggregation on circular dichroism and optical rotatory dispersion of helical poly-L-glutamic acid in solution. , 1967, Biochemical and biophysical research communications.
[6] A. Ikegami,et al. Potentiometric titration of poly(L‐glutamic acid) in aqueous solutions and binding of divalent cations , 1966 .
[7] J. Hermans. The Effect of Protein Denaturants on the Stability of the α Helix1 , 1966 .
[8] William Gaffield,et al. Effect of aggregation on the optical rotatory dispersion of poly(α,L‐glutamic acid) , 1966 .
[9] M. A. Stahmann,et al. Conformational change in poly‐L‐lysine on reaction with polyacids , 1966, Biopolymers.
[10] G. Barone,et al. Conformational transition of poly(L‐glutamic acid) in aqueous solution , 1966 .
[11] J. Kostyo. Changes in polyamine content of rat liver following hypophysectomy and treatment with growth hormone. , 1966, Biochemical and biophysical research communications.
[12] R. Townend. The circular dichroism of the ? structure of poly-l-lysine , 1966 .
[13] Betty M. Davidson,et al. The optical rotatory dispersion of the beta structure of poly-L-lysine and poly-L-serine. , 1966, Biochemical and biophysical research communications.
[14] P. Doty,et al. The optical rotatory properties of the beta-configuration in polypeptides and proteins. , 1966, Proceedings of the National Academy of Sciences of the United States of America.
[15] J. Hermans. Experimental free energy and enthalpy of formation of the alpha-helix. , 1966, The Journal of physical chemistry.
[16] T. M. Schuster. A New Transition in Polyglutamic Acid , 1965 .
[17] P. V. von Hippel,et al. On the conformational stability of globular proteins. The effects of various electrolytes and nonelectrolytes on the thermal ribonuclease transition. , 1965, The Journal of biological chemistry.
[18] R. E. Nylund,et al. THE STABILITY OF THE HELICAL CONFORMATION OF RANDOM L-LEUCINE-L-GLUTAMIC ACID COPOLYMERS IN AQUEOUS SOLUTION. , 1965, Journal of the American Chemical Society.
[19] J. T. Yang,et al. Helix-coil transition of polyl-glutamic acid and polyl-lysine in D2O. , 1965, Biochemistry.
[20] J. T. Yang,et al. On the magnitude of the cotton effects of poly-L-glutamic acid. , 1965, Biopolymers.
[21] D. Puett,et al. Interaction between proteins and salt solutions. III. Effect of salt type and concentration on the shrinkage temperature , 1965, Biopolymers.
[22] P. V. von Hippel,et al. Neutral Salts: The Generality of Their Effects on the Stability of Macromolecular Conformations , 1964, Science.
[23] A. Jacobson. Specific cation effects on the conformation of α‐poly‐L‐glutamic acid , 1964 .
[24] A. Holtzer,et al. The Helix-Coil Transition in Solutions of Polyglutamic Acid , 1964 .
[25] G. Fasman,et al. CONFORMATIONAL STUDIES ON SYNTHETIC POLY-ALPHA-AMINO ACIDS: FACTORS INFLUENCING THE STABILITY OF THE HELICAL CONFORMATION OF POLY-L-GLUTAMIC ACID AND COPOLYMERS OF L-GLUTAMIC ACID AND L-LEUCINE. , 1964, Biochemistry.
[26] P. Doty,et al. The far ultraviolet absorption spectra of polypeptide and protein solutions and their dependence on conformation. , 1961, Proceedings of the National Academy of Sciences of the United States of America.
[27] A. Wada. Helix-coil transformation and titration curve of poly-L-glutamic acid , 1960 .
[28] S. Rice,et al. The helix-coil transition in charged macromolecules , 1960 .
[29] K. Imahori,et al. Ultraviolet absorption spectra of poly-L-glutamic acid , 1959 .
[30] E. Blout,et al. Polypeptides. XVIII.1 A Kinetic Study of the Polymerization of Amino Acid N-Carboxyanhydrides Initiated by Strong Bases , 1958 .
[31] P. Doty,et al. Polypeptides. VIII. Molecular configurations of poly‐L‐glutamic acid in water‐dioxane solution , 1957 .
[32] J. Vinograd,et al. Mechanism of Gelation of Gelatin. Influence of Certain Electrolytes on the Melting Points of Gels of Gelatin and Chemically Modified Gelatins. , 1956 .
[33] W. Moffitt,et al. THE OPTICAL ROTATORY DISPERSION OF SIMPLE POLYPEPTIDES. I. , 1956, Proceedings of the National Academy of Sciences of the United States of America.
[34] P. Doty,et al. Polypeptides. IV. The Molecular Weight, Configuration and Association of Poly-γ-benzyl-L-glutamate in Various Solvents , 1956 .
[35] P. Doty,et al. POLYPEPTIDES. II. THE CONFIGURATION OF POLYMERS OF γ-BENZYL-L-GLUTAMATE IN SOLUTION1 , 1954 .
[36] G. Fasman. [126] Optical rotatory dispersion , 1963 .
[37] Charles Tanford,et al. The Interpretation Of Hydrogen Ion Titration Curves Of Proteins , 1963 .
[38] P. Doty,et al. Optical rotation and the conformation of polypeptides and proteins. , 1961, Advances in protein chemistry.