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Journal of Molecular Biology|March 20, 1991
The roles of residues 5 and 9 of the recognition helix of Lac repressor in lac operator bindingJ Sartorius, N Lehming, B Kisters-Woike, et al.Nucleic Acids Research|October 25, 1994
Replacement of invariant bZip residues within the basic region of the yeast transcriptional activator GCN4 can change its DNA binding specificityM Suckow, K Schwamborn, B Kisters-Woike, et al.Journal of Molecular Biology|July 9, 1999
Dimerisation mutants of Lac repressor. I. A monomeric mutant, L251A, that binds Lac operator DNA as a dimerF Dong, S Spott, O Zimmermann, et al.Nucleic Acids Research|November 11, 1993
Single exchanges of amino acids in the basic region change the specificity of N-MycT Feldmann, R Alex, J Suckow, et al.European Journal of Biochemistry|June 1, 1991
A model of the lac repressor-operator complex based on physical and genetic dataB Kisters-Woike, N Lehming, J Sartorius, et al.The EMBO Journal|March 1, 1990
Mutant lac repressors with new specificities hint at rules for protein--DNA recognitionN Lehming, J Sartorius, B Kisters-Woike, et al.Nucleic Acids Research|June 25, 1994
Creating new DNA binding specificities in the yeast transcriptional activator GCN4 by combining selected amino acid substitutionsM Suckow, A Madan, B Kisters-Woike, et al.The EMBO Journal|August 1, 1992
Lac repressor with the helix-turn-helix motif of lambda cro binds to lac operatorP Kolkhof, D Teichmann, B Kisters-Woike, et al.Mechanisms of Development|November 1, 1992
The mouse Enhancer trap locus 1 (Etl-1): a novel mammalian gene related to Drosophila and yeast transcriptional regulator genesR Soininen, M Schoor, U Henseling, et al.Journal of Molecular Biology|August 30, 1996
Genetic studies of the Lac repressor. XV: 4000 single amino acid substitutions and analysis of the resulting phenotypes on the basis of the protein structureJ Suckow, P Markiewicz, L G Kleina, et al.Pageof 3