Solution behaviour and zinc complexation of tripeptides with cysteine and/or histidine at both termini
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[1] K. Yamamoto,et al. Crystallographic analysis of the interaction of the glucocorticoid receptor with DNA , 2003, Nature.
[2] W. Haehnel,et al. On the role of structural zinc in bis(cysteinyl) protein sequences. , 1997, Chemistry.
[3] P. Gockel,et al. Zinc Complexes of Amino Acids and Peptides, 8[]. Difunctional Dipeptides Containing Cysteine or Histidine: Solution Behavior and Zinc Complextion , 1996 .
[4] P. Gockel,et al. Zinc Complexes of Amino Acids and Peptides, 7. Solution Behavior and Zinc Complexation of Dipeptides Made up Solely from Histidine and Cysteine , 1996 .
[5] H. Nolting,et al. Zinc Complexes of Amino Acids and Peptides, 6. Zinc Complexes of Oligopeptides Containing Histidine at Both Termini , 1996 .
[6] H. Vahrenkamp,et al. Zinc Complexes of Histidine‐Containing Di‐ and Tripeptides , 1995 .
[7] Takeshi Yamamura,et al. Conformation Control of Model Peptides by Metal Ions. 1. Cys-X-Y-Cys and Linear Coordination , 1995 .
[8] H. Vahrenkamp,et al. Zinkkomplexe von Aminosäuren und Peptiden, 2[1]. Koordination einfacher Histidin-Derivate an Zink , 1993 .
[9] Athanassios Giannis,et al. PEPTIDMIMETICA FUR REZEPTORLIGANDEN : ENTDECKUNG, ENTWICKLUNG UND MEDIZINISCHE PERSPEKTIVEN , 1993 .
[10] Thomas Kolter,et al. Peptidomimetics for Receptor Ligands—Discovery, Development, and Medical Perspectives , 1993 .
[11] P. Gockel,et al. Zine Complexes of Cysteine, Histidine, and Derivatives Thereof: Potentiometric determination of their compositions and stabilities , 1993 .
[12] E. Delaive,et al. Importance of the structural zinc atom for the stability of yeast alcohol dehydrogenase. , 1992, The Biochemical journal.
[13] Michael Carey,et al. DNA recognition by GAL4: structure of a protein-DNA complex , 1992, Nature.
[14] Jeremy M. Berg,et al. A consensus zinc finger peptide: design, high-affinity metal binding, a pH-dependent structure, and a His to Cys sequence variant , 1991 .
[15] K. Scheller,et al. Complex formation between copper(2+) and 1,N6-ethenoadenosine 5'-triphosphate (.epsilon.-ATP) , 1986 .
[16] T. Kaden,et al. TITFIT, a comprehensive program for numerical treatment of potentiometric data by using analytical derivatives and automatically optimized subroutines with the Newton-Gauss-Marquardt algorithm. , 1982, Talanta.
[17] P. Y. Chou,et al. β-turns in proteins☆ , 1977 .
[18] G. Weitzel,et al. [Zinc complexes of histidyl peptides]. , 1957, Hoppe-Seyler's Zeitschrift fur physiologische Chemie.
[19] A. Berger,et al. Poly-L-proline , 1954 .
[20] N. Jayaraman,et al. Synthesis of “ zinc finger ” template , 1992 .
[21] H. Kozłowski,et al. Transition metal complexes of L-cysteine containing di- and tripeptides. , 1990, Journal of inorganic biochemistry.
[22] K. Burger. Biocoordination chemistry : coordination equilibria in biologically active systems , 1990 .
[23] Aaron Klug,et al. ‘Zinc fingers’: a novel protein motif for nucleic acid recognition , 1987 .
[24] R. Seyer,et al. Renin substrates. Part 1. Liquid-phase synthesis of the equine sequence with benzotriazolyloxytris(dimethylamino)phosphonium hexafluorophosphate (BOP) , 1985 .
[25] I. Sóvágó,et al. Metal complexes of sulphur-containinng ligands. V. Interactions of cobalt(II) ion with L-cysteine and its derivatives , 1983 .
[26] Roger M. Freidinger,et al. Protected lactam-bridged dipeptides for use as conformational constraints in peptides , 1982 .
[27] J. Richardson,et al. The anatomy and taxonomy of protein structure. , 1981, Advances in protein chemistry.
[28] H. Sigel. Amino acids and derivatives as ambivalent ligands , 1979 .
[29] H. Wenck,et al. Kinetik der Reaktion von Imidazol-SH-Verbindungen mitN-Äthyl-maleinimid , 1969 .
[30] T. L. Jacobs,et al. Steroid Homologs Containing Pyridazinone and Related Nuclei1 , 1954 .